Anti‐Environmental Aging Passive Daytime Radiative Cooling

Abstract Passive daytime radiative cooling technology presents a sustainable solution for combating global warming and accompanying extreme weather, with great potential for diverse applications. The key characteristics of this cooling technology are the ability to reflect most sunlight and radiate heat through the atmospheric transparency window. However, the required high solar reflectance is easily affected by environmental aging, rendering the cooling ineffective. In recent years, significant advancements have been made in understanding the failure mechanisms, design strategies, and manufacturing technologies of daytime radiative cooling. Herein, a critical review on anti‐environmental aging passive daytime radiative cooling with the goal of advancing their commercial applications is presented. It is first introduced the optical mechanisms and optimization principles of radiative cooling, which serve as a basis for further endowing environmental durability. Then the environmental aging conditions of passive daytime radiative cooling, mainly focusing on UV exposure, thermal aging, surface contamination and chemical corrosion are discussed. Furthermore, the developments of anti‐environmental aging passive daytime radiative cooling materials, including design strategies, fabrication techniques, structures, and performances, are reviewed and classified for the first time. Last but not the least, the remaining open challenges and the insights are presented for the further promotion of the commercialization progress.


Introduction
Since the onset of the industrial revolution, the continuous discharge of heat-absorbing greenhouse gases, such as carbon DOI: 10.1002/advs.202305664dioxide, into the atmosphere by human activities has led to a gradual increase of the global average temperature. [1]This has resulted in a myriad of problems, including extreme heat waves, [2] melting glaciers, [3] floods [4] and rising biological mortality [5] which have drawn the attention of countries worldwide.Despite the Paris Agreement providing a new framework for global cooperation to address climate change, achieving the target of limiting global warming to 1.5 °C remains a daunting challenge, as greenhouse gas emissions are still soaring. [6]Currently, electric-driven air conditioning is the most commonly-used method for controlling indoor temperature. [7]However, the widespread use of air conditioners poses several challenges.For one, the proliferation of air conditioners leads to a significant increase in energy consumption and associated economic costs. [8]Moreover, frequently-used refrigerants, such as ozone-depleting substances, contribute to ozone depletion, further exacerbating greenhouse gas emissions. [9]Additionally, ≈2 to 4 billion people in low and middleincome countries in tropical or subtropical regions do not have access to space-cooling equipment. [10]Therefore, it is urgent to seek alternative cooling strategies.
through LWIR radiation. [20,21]Even if the material has perfect LWIR emittance ( εLWIR ), a few percent solar absorption can rapidly heat the surface.18c,22] This limitation presents a significant challenge for the continuous development and application of PDRC technology.
To address this issue, researchers have begun to focus on the environmental durability of PDRC, considering aspects such as contamination-resistance, [14a,17c,18c,22c] photothermal durability, [18c,23] flame retardancy, [15a,24] and acid and alkali resistance. [25]We believe that this list will continue to grow, because the real-world aging is more complex, contamination and weathering are usually synergistic.However, the commercialization of PDRC remains in its nascent stages due to its relatively late entry into the research arena, most reviews only provide basic theories, general materials and applications of PDRC, [11c,12b,26] and there is currently no review focusing on environmental durability of PDRC.To bridge this gap, we show a comprehensive and detailed review of anti-environmental aging PDRC (AEA-PDRC) for the first time, aiming to establish a strong design and development work of AEA-PDRC, and to break through the bottleneck restricting practical application in daily scenarios.
Figure 1 provides an overview of the fundamentals, design strategies, material structures, and performance evaluations required for constructing AEA-PDRC.This review is divided into four chapters to comprehensively address the subject matter.Chapter 1 discusses the optical mechanisms and optimizations of typical PDRC.Chapter 2 illustrates the intrinsic causes of PDRC failure due to environmental aging and corresponding fundamentals and characterization methods from four aspects, including UV exposure, thermal aging, surface contamination and chemical corrosion, providing guidance for the material selection and structural designs of AEA-PDRC.Chapter 3 summarizes the works and developments of AEA-PDRC materials, including design strategies, fabrications, structures, and performance evaluations.Notably, a single strategy can only achieve limited durability of one aspect of PDRC.Therefore, the general strategy of designing comprehensive AEA-PDRC by combining several excellent durability properties is summarized and prospected in chapter 4 to promote the commercialization of PDRC techniques and enable PDRC materials long-term working in harsh environments.

Passive Daytime Radiative Cooling
The achievement of PDRC is the first step before endowing anti-environmental aging properties with PDRC.In systems of PDRC, thermal exchange with both the hot sun (≈5727 °C) and the cold outer space (≈−270 °C) are involved (Figure 2a).The optical performance of used materials is crucial to achieve PDRC.In order to develop PDRC, it is essential to fully comprehend the importance of high solar reflectance (R̅ solar ≥ 0.9) and how to create structures with high R̅ solar and εLWIR .Therefore, we begin by discussing the fundamental physics of PDRC, including a detailed calculation of the cooling power's dependence on R̅ solar and ambient temperature to highlight the necessity of high R̅ solar .The material selection and general optical design principles of PDRC are also summarized.

Fundamentals of Passive Daytime Radiative Cooling
All objects emit thermal radiation above absolute zero temperature, with higher temperatures resulting in greater amounts of radiation. [27]The wavelength of the electromagnetic wave emitted is inversely proportional to the temperature of the objects.For instance, the sun's surface temperature is ≈5700 °C, with its peak radiation is in visible wavelengths (Figure 2b). [28]11b,13a] Therefore, the heat on earth can be directly transferred to outer space without additional energy cost through thermal radiation to achieve sub-ambient cooling.On the other hand, different from nighttime radiative cooling, PDRC imposes stringent and demanding requirements on the R̅ solar .This is because the solar energy power, which can reach up to ≈1000 W m −2 , far exceeds the potential cooling power (≈10-150 W m −2 ) through atmospheric transparency windows, [20b] making it significant to ensure that the peak solar absorbance does not exceed the energy amount emitted from the cooler.Specific quantitative requirements for R̅ solar of PDRC under different conditions will be outlined in Chapter 2.1.2.Therefore, high R̅ solar and high thermal infrared emittances are two necessary conditions for PDRC. ) Spectrum of a blackbody surface with a temperature of 300 K (solid black curve) and the atmospheric transparency window in the infrared regions (highlighted in blue background).d) Ideal emittance spectrum of broadband radiator and selective narrowband radiator.Inset showing the net radiative cooling power of two emitters as a function of the temperature difference between the emitter surfaces and their surroundings.11c] Copyright 2019, AIP Publishing.11b] Copyright 2020, AAAS.

Types of Thermal Emittances in Passive Daytime Radiative Cooling
11c] However, atmospheric transparent chan-nels distributed in other infrared bands can also provide additional cooling channels.18a] As such, broadband emitter (4-25 μm) and selective narrowband emitter (8-13 μm) have become the two ideal modes of PDRC (Figure 2d).11b] It can be seen that when the surface temperature is lower than the ambient temperature, the selective narrowband emitter can provide stronger passive cooling (Figure 2d).The broadband emitter has greater cooling power when the surface temperature is higher or close to the ambient temperature.

Optical Requirements for R̅ solar of Passive Daytime Radiative Cooling
In order to quantitatively evaluate the requirements for R̅ solar of PDRC under different solar irradiance (I solar ), there are two parameters to feel the cooling ability of PDRC intuitively, the subambient temperature drop and the cooling power.11c] In contrast, cooling power emerges as a relatively dependable and steadfast metric.21b] Consequently, it provides a more consistent measure of PDRC's cooling performance.
11f] In general, for a radiative cooler at temperature T and ambient temperature T a and exposed to the sky, the net cooling power P net (T, T a ) can be calculated as: where P rad (T) is thermal radiation power from the cooler, P atm (T a ) is absorbed atmospheric longwave radiation power from atmospheric thermal radiation, P solar is absorbed solar irradiance and P nrad (T, T a ) is the nonradiative heat transfer, including conduction and convection, between the cooler and the surrounding environment.In practice, a heater can be used to compensate the heat loss of the cooling device to make its temperature equal to the ambient one.Then, the P net (T, T a ) turns P net (T a , T a ) and can be further defined as P cool (T a ), which equals to the heat power.
The P rad (T) becomes P rad (T a ) and the P atm (T) becomes P atm (T a ) and can be described as where (, ) and  a (,) are spectral and angular emittance of the radiative cooling surface and ambient air, t a (, 0) is the atmospheric transmittance at the zero zenith angle.The data of t a (, 0) is from ATRAN modeling software in our estimation.For a radiative cooler with a unit area of 1 m 2 , P nrad (T, T a ) can be expressed as h c (T a -T) by introducing a non-radiative heat transfer coefficient h c (unit of W m −2 K −1 ).It is worth noting that the value of h c can vary significantly, ranging from 2 to 20 W m −2 K −1 , [11c] depending on the specific environmental conditions.To mitigate the impact of this uncontrolled factor, it is advantageous to set ΔT = T a -T = 0, thus eliminating the P nrad (T, T a ) term from consideration.
The ideal blackbody radiation without solar absorption can be created by setting 100% R̅ solar and 100% εLWIR .Then P cool (T a ) can be written as It is noted that P cool as a function of ambient temperature T a under different R̅ solar can be simply gained by resetting non-zero term of (1 − R̅ solar ) P sun to obtain the net cooling energy P net (T a ): Figure 3 depicts the cooling power curve as a function of R̅ solar and ambient temperature under the varying solar irradiances.11f] It is evident that the positive cooling power demands higher R̅ solar as the solar irradiance energy increases.Specifically, R̅ solar of the radiative cooler is typically greater than 0.90 for sub-ambient cooling when the solar power exceeds 1000 W m −2 .
In summary, from the perspective of optical design, PDRC technology is generally divided into two combinations: "high R̅ solar + high selective narrowband infrared emittance (8-13 μm)" and "high R̅ solar + high broadband infrared emittance (4-25 μm)".The aforementioned analysis highlights two significant issues.First, designing PDRC materials with high R̅ solar is of utmost importance to ensure optical performance under ideal conditions.Second, the AEA-PDRC materials must prioritize maintaining high R̅ solar to guarantee the long-term effectiveness in harsh environments.

Optical Optimization of Passive Daytime Radiative Cooling
In this section, we categorize PDRC materials based on optics, specifically their ability to achieve high R̅ solar and εLWIR .Our focus is on two major categories of paint-based models: scatterers-embedded matrix and porous structure.19a,26a,31] Due to the diversity of design concepts and manufacturing techniques, the above classification is sometimes incomplete and inaccurate, and is for reference only.

Scatterers-Embedded Matrix
In the 20th century, high albedo white roof coatings based on pigments embedded in resin became commercially available in the industry, [11e] laying the foundation for the conceptual design of PDRC.While these materials cannot directly achieve subambient cooling under strong sunlight due to their moderate R̅ solar , the fundamental structure, hybrid optical scatterers embedded in matrix, represent an ideal structural design of PDRC.In order to achieve high R̅ solar based on this structure, a thorough understanding of the interaction between light and optical scatterers is required.According to Snell's law, the large refractive index difference between two different media triggers strong light scattering, leading to high reflectance (Figure 4a).To maximize R̅ solar , three significant issues must be considered: the selection of materials with different refractive indexes, the size distribution and the filling ratio of optical scatterers.
In order to further explain quantitatively, Mie theory calculated from Maxwell equations describes the cross-sectional area of a homogenous spherical scatterer, the size of the scatterer, the refractive index of the scatterer and the matrix, which provides excellent guidance for understanding the relationship between the scattering efficiency of a single scatterer and the reflectance of derived structure.The scattering cross-section (C sca ) of a spherical scatterer is determined as: [32] here k is wavevector, n is multipole order, a n is nth electric mode coefficient, b n is nth magnetic mode coefficient, m is the relative refractive index,  and  are Riccati-Bessel functions.Then the scattering efficiency coefficient (Q sca ) is the normalization of C sca as: here r 2 is the geometrical cross-sectional area of the scatterer.
To illustrate the principles of material selection for designing PDRC, the scattering efficiency of a single scatterer with different refractive indexes in various media were calculated.As shown in Figure 4b, the results demonstrated that scatterers with higher refractive index differences relative to the polymer matrix (n = 1.5), such as titanium dioxide (TiO 2 ) (n ≈ 2.5) spheres, can scatter sunlight more strongly compared with aluminum oxide (Al 2 O 3 ) (n ≈ 1.76) spheres in the same polymer matrix (n = 1.5).Additionally, scatterers in a medium with a lower refractive index can also accomplish higher scattering efficiency.20b] Therefore, materials with wider bandgaps, such as Al 2 O 3 (7.0eV), barium sulfate (BaSO 4 ) (6.0 eV), calcium carbonate (CaCO 3 ) (7.0 eV) etc., are also viable candidates for optical scattering materials.
14a,18b] For instance, TiO 2 spheres with size distributions between 100 and 2000 nm embedded in matrix (n = 1.5) can utilize multiple Mie resonances to generate the scattering peak required to efficiently cover the entire visible-to-near-infrared band (Figure 4c).
Lastly, the effect of the filling ratio of scatterers in the medium on the optical performance of the system is a complex issue.Different filling ratios will inevitably change the spacing between scatterers and affect the total scattering efficiency.Briefly, low filling ratios result in independent scattering, which guarantees the scattering efficiency of a single scatterer but decreases the number of scattering interfaces between scatters and medium.In contrast, high filling ratios increase the scattering interfaces and times, but the crowding can lead to dependent scattering, thereby reducing the scattering efficiency of a single scatterer. [33]herefore, an optimal filling ratio should be determined to balance these factors.In Figure 4d, we describe the competition between the scattering efficiency of a single scatterer (S optical scatterer ) and the number of scatterers (N optical scatterer ) as the filling ratio (ϕ) increases.The definition of scatterer filling ratio (ϕ) is as follows: Here, V sca , V polymeric binder , V other fillers are volume of scatters, polymeric binder and all other fillers respectively.The total scattering efficiency of the coating (S coating ) is proportional to S optical scatterer and N optical scatterer .We can qualitatively define: when ϕ is low, S≈A × B, although A is high, B is low, and S may not be desirable.Likewise, dependent light scattering effect caused by high ϕ will inevitably result in low S optical scatterer , leading to a relatively low S coating (S coating ≈E × F).Therefore, the ideal high S coating must be achieved at an appropriate medium filling ratio (such as point C and D in Figure 4d).While empirical formulas can provide qualitative guidance for designing PDRC, precise quantitative experimental parameters rely on modeling and calculation through optical simulation software tailored to specific materials and structures.18c,19a,c] These simulation tools enable researchers to gain insights into the optical properties of PDRC and help in the optimization of radiative cooler.

Porous Structure
From an optical perspective, the mesoporous structure is similar to the structure of scatterers-embedded matrix.20b] The major structural parameters are pore size, porosity, and pore distribution.
To gain a better understanding of these parameters, A numerical simulation model based on porous P(VdF-HFP) was developed by Chen et al. [14a] The authors employed a 2D porous a-f) Reproduced with permission. [34]Copyright 2021, American Chemical Society.19c] Copyright 2021, Springer Nature.15c] Copyright 2018, Wiley-VCH.
structure for modeling to reduce the calculation load (Figure 5a).This was mainly due to the dependence of total reflectance on wavelength, which can be explained by the pore size and porosity.When the pore size is small in a porous coating (e.g., 0.1 μm radius), the pores are relatively more numerous and denser.Shorter wavelengths of sunlight, including the high-energy ultraviolet and visible light, possess smaller or comparable wavelengths than the pore size, allowing them to easily enter the air-voids within the coating and interact with the air-solid interfaces. [33]ithin these smaller pores, a captivating phenomenon unfolds as shorter wavelengths of light undergo multiple rounds of scattering and reflection, culminating in elevated reflectance.In contrast, sunlight carrying longer wavelengths, typified by the nearinfrared light, bears diminished energy levels.These extended wavelengths gracefully transcend the pore dimensions, facilitating their unhindered traversal through the smaller pores, with minimal scattering or absorption. [32]The outcome is a reduction in reflectance for light featuring longer wavelengths within coatings with smaller pore sizes, courtesy of their unimpeded journey through the coating.A similar dynamic is at play when the pore size within the porous coating are expanded.Sunlight bearing wavelengths corresponding to the enlarging pores becomes increasingly prone to multiple scattering and reflection events, driving the reflection peak toward longer wavelengths in harmony with aperture growth.Conversely, shorter-wavelength sunlight encounters fewer impediments, enabling it to traverse the coating with ease and leading to reduced reflectance within the shorter wavelength range.The classical Mie scattering theory also demonstrated that the scattering peak significantly redshifts with the increase of pore radius, and the maximum scattering efficiency occurs at a wavelength slightly larger than the pore radius.The pore radii between 0.1-0.5 μm exhibited the strongest scattering efficiency for the wavelength with the highest solar energy (0.4−0.7 μm), with 0.2 μm being the optimal radius to improve R̅ solar (Figure 5b,c).The εLWIR almost stayed unchanged with the change of radius, mainly due to the high emissivity/absorptance of P(VdF-HFP) in the atmospheric transparency window.Second, porosity is another core parameter that affects optical performance, and more pores are able to scatter sunlight more effectively (Figure 5d).However, too many pores may increase light transmission and slightly reduce R̅ solar .On the other hand, more pores mean a decrease in polymer content, weakening the absorptance in the longwave infrared region, resulting in a slight fall of εLWIR .Lastly, the dual-scale uneven distribution of micro and nano pores can trigger the collective behavior of multiple Mie behaviors to cover the entire solar spectrum, further strengthening the R̅ solar (Figure 5e,f).
These results well illustrated general principles of parameter adjustment in porous structural design.Qualitatively, these laws are also applicable to other various media.14a] Among them, ≈4.6 μm micropores effectively scattered sunlight at ultravioletvisible-near infrared wavelength, while the rich and random ≈250 nm nanopores greatly reduced the average scattering path and transmission through the bulk, which further enhanced scattering at shorter visible wavelength.15c] With the increase of thickness, the reflectance/transmittance of the porous PMMA film also increased/decreased significantly, which was mainly attribute to more reflections and refractions at the air-solid interfaces.
In conclusion, this chapter is the basis for the design of PDRC.On the foundation of ensuring high R̅ solar and εLWIR , environmental durability can be further added to PDRC.

Conditions of Environmental Aging
11c,12b,22a,29] First of all, we review the intrinsic causes of failure of PDRC materials due to UV exposure, thermal aging, and chemical corrosion, which are fundamental and necessary for further designing high-performance AEA-PDRC materials.In addition, soiling-induced degradation of R̅ solar is a primary challenge for PDRC.To improve the contamination resistance and maintain high R̅ solar , different superwetting surfaces, including liquid-repellent surfaces with moderate hydrophobicity, [14a,19a] superhydrophobicity [16a,17c,18c,22c] and superamphiphobicity, [35] and photocatalysis-induced hydrophilic surfaces [36] have been proposed.Therefore, we provide detailed descriptions on liquid-solid interfaces and wetting states, dust particle adhesion on surfaces and self-cleaning mechanisms.Lastly, it is worth briefly discussing the characterization methods used in the literature for the aforementioned environmental aging conditions, as different characterizations may affect fair comparisons between different works.We also recommend some standard testing methods.

Ultraviolet Exposure
The ultraviolet (UV) aging of PDRC poses a significant challenge that demands the attention of researchers.11c,26c] As a result, UV exposure is an objective and inevitable external factor that brings a persistent threat to PDRC materials.Additionally, most polymer-based materials tend to absorb UV energy under sunlight, leading to the dissociation of molecular chains and the initiation of free radical chain reactions. [37]This process can result in a decline in the relative molecular mass, tensile strength, and modulus of the material. [38]19b,22b] In general, materials with lower bond energy are more susceptible to be broken under UV energy.
Second, the yellowing effect caused by UV degradation of polymers is unacceptable for PDRC, as it irreversibly damages the ultra-white appearance and reduces R̅ solar , rendering PDRC ineffective.Long-term UV exposure of polymers leads to photooxygen aging, where weak molecular bonds on the polymer chain break under UV irradiation, forming free radicals that react with oxygen to produce aldehydes, peroxides, and other substances, resulting in yellowing. [39]This is a common phenomenon that has been observed by many researchers.39a] This color shifting can be attributed to oxidation reactions which lead to the formation of an oxidized layer on the surface.Zhao et al. found that ethylene propylene glycol monomer (EPDM) turned red, yellow, and light during UV aging, with specular gloss initially increasing and then decreasing with time. [40]Woo et al. also demonstrated the yellowing effect of epoxy-organoclay nanocomposites under UV exposure. [41]Li et al. demonstrated that the polyethersulfone (PES) film for PDRC turned yellow after 1000 h of UV exposure (Figure 6b), and SEM images showed that the morphology of the PES film was fragmented after 7 days of strong sunlight exposure (Figure 6c). [42]19c] Lastly, the two most common characterization methods for evaluating the UV resistance of PDRC materials are using UV lamp irradiation and direct sunlight exposure in the real world.On the one hand, the UV lamp irradiation method can accurately f) The spectrum and appearance of superhydrophobic PDRC film after being placed outdoors for one month.g) Photos of superhydrophobic PDRC coating and commercial white paint coating after 6 months of real-world exposure.f) Comparison of optical and wetting properties before and after real-world exposure.39a] Copyright 2010, Elsevier.b,c) Reproduced with permission. [42]Copyright 2023, Wiley-VCH.19c] Copyright 2021, Springer Nature.22c] Copyright 2021, Royal Society of Chemistry.18c] Copyright 2022, Springer Nature.14a,18c,22b,23] The irradiation of UV lamp usually requires consideration of testing parameters, including but not limited to the wavelength and intensity of UV radiation, exposure time, and the distance between the lamp and the sample surface. [43]One of the key benefits of this laboratory-level accelerated aging test method is its capacity to facilitate fair and quantitative comparisons of material properties across various studies.For instance, Florida is an internationally recognized benchmark location for outdoor exposure testing due to its high intensity of sunlight, sufficient annual ultraviolet radiation and high temperatures throughout the year (Figure 6e).Sleiman et al. mentioned that accelerated exposure (0.89 W m −2 at 340 nm) in the Q-lab UV Tester (QUV) for 1000 h could be approximately equivalent to 1 year of Florida sunshine (about annual UV dosage = 275 MJ m −2 ), [43b,44] providing a standard accelerated aging testing method that could be performed in the laboratory.18c,19a,c,22c] Liu et al. exposed the PDRC material to outdoor conditions for a duration of one month and then measured the R̅ solar (Figure 6f).Wang et al. conducted a 40 days exposure test on a PDRC film, which was installed on a rooftop in Shanghai to ensure that the film's surface was fully exposed to the natural environment, fac-ing the sky.11c,18c] For instance, Song et al. conducted a comprehensive study on the real-world aging performance of superhydrophobic PDRC coatings and commercial white paint coatings.All coating slides were divided into three regions: unexposed/(exposed, washed)/(exposed, unwashed).Each region was individually characterized after real-world test (Figure 6g,h).The exposed samples were subjected to natural weathering conditions, including but not limited to sunlight irradiation, high temperatures, rainwater, and contamination, for a period of ≈6 months, spanning three seasons.Moreover, differences in sunlight intensity due to geographical locations can cause significant variations in test outcomes. [29]Therefore, compared to the UV lamp irradiation method, this characterization method is difficult to directly demonstrate the single UV resistance of materials.
Overall, the laboratory UV accelerated aging testing is necessary to demonstrate the UV durability of PDRC materials, which is a more convincing characterization method.Usually, it should be based on certain standards, such as American Society for Testing and Materials (ASTM) standard, and can be equivalently converted to real-world sunlight irradiation.Because the low light source intensity or insufficient exposure time, the real-world sunlight exposure testing may not be able to evaluate the true performance of PDRC materials.Nevertheless, this testing remains an indispensable tool for comprehensive characterization of various aspects of PDRC materials after conducting accelerated aging tests on a single aspect.

Thermal Aging and Flame Burning
Thermal aging refers to the potential deterioration of PDRC materials when exposed to high temperatures or direct contact with flames.Similar to UV exposure, thermal aging involves oxidation reactions, [45] thermal crosslinking [46] and free radical reactions, [47] leading to a decline in physical and chemical properties.Structural damage and changes in chemical composition can greatly impact the mechanical properties and lifespan of materials, while surface color changes can be detrimental to the high R̅ solar of PDRC.Fortunately, outdoor temperatures generally remain below 70 °C, [48] and even after being heated by sunlight, the temperature of white surfaces typically does not exceed 80 °C. [49]This is not a significant threat to most polymers suitable for PDRC.Thus far, there have been few reports of PDRC materials failing or experiencing substantial performance degradation due to high-temperature environments.However, it is important to consider the accelerating effect of thermal aging when combined with other photoaging factors, such as UV exposure, as they often act synergistically. [50]15a,24,51] Flame temperatures can range from a few hundred to several thousand degrees, which is unacceptable for the majority of polymer-based PDRC materials.Inorganic PDRC materials have demonstrated significant advantages toward flame retardancy, as highlighted in the researches conducted by Tsai et al [51] and Chen et al [15a] in 4.2.2.
18c,19a,25b,52] Maintaining proper humidity levels during testing is crucial because elevated humidity can expedite chemical reactions, such as hydrolysis, creep, and dissolution, thereby accelerating material aging and degradation. [53]s previously mentioned, single high-temperature environment restricted direct aging effects on PDRC materials.Instead, they are more likely to act as synergistic factors to catalyze other environmental aging factors.Consequently, long-term monitoring of PDRC samples in real-world remains an ideal approach to comprehensively evaluate environmental durability, particularly with regards to resistance against photothermal aging, which has more practical significance.

Surface Contamination
In reality, even small amounts of natural pollutants deposited on the surface of PDRC materials will inevitably absorb sunlight, significantly reducing R̅ solar and thus compromising cooling capacity.Thus, it is essential to develop effective methods to remove pollutants.Conventional dedusting techniques, such as ultrasonic washing and mechanical cleaning are active methods that require energy input and are labor-intensive.These methods can lead to the wastage of water resources, the damage of materials, and higher economic costs.43c,54] Such surfaces enable droplets to pick up solid contaminants and roll off rapidly.To build liquid-repellent surfaces and gain insights into the self-cleaning process, we present the different solid-liquid wetting states, the adhesion of soiling particles, and the dust removal from self-cleaning liquid repellent surfaces.Additionally, the photocatalytic self-cleaning technology that can convert organic pollutants into carbon dioxide and water is also introduced.

Liquid-Solid Interfaces and Wetting States
When the liquid wetting of a solid surface occurs in air, a triplephase interface consisting of solid, air and liquid is built, and a contact angle that is defined as the angle between the tangent to the liquid-air interface and the solid surface at the three-phase contact line can be observed.The classical Young's equation describes the relationship between the static contact angle ( Y ) and the interfacial tension: [55] cos Here,  SA ,  SL and  LA are the interfacial tensions at the solidair, solid-liquid and liquid-air interfaces, respectively.It can predict the following wetting conditions: when  Y = 0, completely wetting; when  Y < 90°, partially wetting; when  Y > 90°, nonwetting; when  Y = 180°, completely non-wetting. Y = 90°is the boundary between non-wettability and wettability.By gradually increasing or decreasing the volume of a droplet, a maximal contact angle, namely the advancing angle,  adv and a minimal contact angle, namely the receding angle,  rec can be observed respectively. adv −  rec is defined as the contact angle hysteresis, which affects the sliding angle,  slid or roll-off angle,  roll represents how easily a droplet can slide or roll on a solid surface.The quantitative relationship between  slid or  roll ,  adv and  rec is as follows: [56] mg ( sin where m is the droplet mass, g is the acceleration of gravity,  is the droplet diameter (the width of the contact surface between the droplet and the surface in the vertical sliding (rolling) direction), and  is the surface tension.
To modify the Young's model by considering the surface roughness, the Wenzel model was introduced.The roughness factor (r) can be described as: [57] r = actual surface area projected surface area (15) In the Wenzel model, it is assumed that there is no air at the interface between the solid surface and liquid, and the rough protrusions on the solid surface are uniformly distributed.Wenzel proposed an intuitive equation to describe the apparent contact angle ( w ) of the rough surface: If the solid-liquid interface is Wenzel state, the greater the roughness (r) on the hydrophilic solid surface ( Y <90°), the smaller  w , the more wettable it will be; the greater the roughness (r) on the hydrophobic solid surface ( Y >90°), the larger  W , means the more non-wettable (Figure 7a,b).
In order to further adapt to complex situations in practical applications, Cassie and Baxter proposed a wetting model suitable for heterogeneous surfaces made of various components with different solid-liquid ( i,SL ) and solid-air ( i,SA ) interfacial tension. [58]he fraction of each component in the surface is f i , wherein f 1 + f 2 + ⋅⋅⋅ + f n = 1.The apparent contact angle (*) is shown by the following formula: In particular, if the surface is only composed of a solid phase (its fraction is f s ) and the air phase (its fraction is 1 − f s ), which means air could be trapped below a droplet within the pore of the rough surface (Figure 7c,d), thus the * can be obtained by only introducing the static contact angle,  Y : [59] cos As shown in Figure 7e, two significant conclusions could be drawn.First, the apparent contact angle (*) of a rough surface can be improved by increasing the static contact angle ( Y ) of the solid material, which can be achieved through chemical modifications that decrease the solid surface energy.Second, the * increases as the solid fraction (f s ) decreases, which can be accomplished by increasing the surface roughness to reduce the solidliquid contact area.Furthermore, the roll-off angle represents a pivotal parameter for the assessment of super-liquid-repellent surfaces.It can be intuitively defined as the angle of tilt at which a solid surface reaches a critical state just before a droplet commences rolling.The roll-off angle is influenced by a myriad of contributing factors, including but not limited to solid surface energy, surface roughness, liquid surface tension, viscosity, and density, among others. [56]43c] Therefore, "micro-and/or nanoscale rough structures + low surface energy chemistry" is currently the general strategy for constructing super-liquid-repellent surfaces.The common materials used to decrease the surface energy are listed and categorized in Table 1.

Dust Particle Adhesion on Surfaces
54a,60] The key to successful self-cleaning is ensuring that the driving force of particle separation is greater than the adhesion force.The JKR (Johnson-Kendall-Roberts) theory enables us to qualitatively and semiquantitatively assess the surface adhesion force (F adh ) between a spherical particle and a flat surface: [61] where D is the particle diameter,  is the ratio of the actual to the apparent contact area of the particle. surf is the surface energy of the substrate,  part is the surface energy of the particle. sp is the interfacial energy between the substrate and particle, which can be neglected in this case.We estimated the  surf of the hydrophobic surface (fluorinated flat surface) as 10 mN m −1 and  surf of the hydrophilic surface as 100 mN m −1 ,  are estimated as 0.1 and 0.2 for superhydrophobic surfaces respectively (0.1 means the better liquid repellency). [62]As shown in (Figure 8a,b), the adhesion between hydrophobic/hydrophilic particles and solid surfaces with different wetting properties were estimated.
In brief, regardless of the nature of the pollutant particles, the lower the solid surface energy, the smaller the contact fraction with particles (i.e., the greater the surface roughness), and the lower the adhesion.This is consistent with the design principle of the high-performance liquid repellent surfaces.

Dust Removal of Self-Cleaning Liquid Repellent Surfaces
Self-cleaning of liquid-repellent surfaces has garnered immense interest due to its diverse applications. [63]62a] While this is a macroscopic phenomenon, understanding the self-cleaning process from a microscopic perspective is pivotal to design high-performance self-cleaning surfaces.
62a] Their findings demonstrated that hydrophobic micro-and nanoparticles on nanofilament-coated superhydrophobic surfaces could be effectively removed by droplets without impacting superhydrophobicity (Figure 9b).However, hydrophilic particles dispersed in ethanol, representing severe pollution, impose higher requirements for liquid-repellent surfaces.When hydrophilic particle size (p) is smaller than pore size (2R), particles could enter micropores of the coating, rendering superhydrophobicity ineffective even after washing, as pollutant nanoparticles remain within the microstructure (Figure 9c,d).Besides, Wong et al. noted that that the cleaning liquid could cause residual droplets after dust removal on superhydrophobic surfaces (Figure 8e). [64]These micro-droplets and micropollutants are only pinned to the surface nanostructure's top and do not impact the Cassie-Baxter state (Figure 9f,g).Moreover, superhydrophobic surfaces exhibit durable self-cleaning performance when applied to pure volatile liquids, such as water, for extended periods.However, caution should be exercised when using non-volatile liquids due to the damage to the wettability of liquid repellent surfaces caused by frequent use.
In addition to water, there are numerous other liquids with low surface energy or high viscosity in real life that are easy to wet solid surfaces, which is also a major challenge for selfcleaning.A surface that is both superhydrophobic and superoleophobic can significantly expand the range of cleanable solvents, thus holding great practical significance. [65]For instance, Wang et al. reported a MXene/Ni chain/ZnO array cotton fabric that delivered durable self-cleaning performance. [66]Common liquids with varying surface energies and viscosities, such as water, milk, coffee, juice, and other acid and alkali solutions, formed spherical droplets on the fabric surface and did not penetrate the surface (Figure 9h).Additionally, Deng et al. developed a transparent superamphiphobic surface using a candlesoot template method, which exhibited a contact angle of over 150°toward water ( = 72.1 mN m −2 ), diiodiomethane ( = 50.9mN m −2 ), ethylene glycol ( = 47.3 mN m −2 ), peanut oil ( = 34.5 mN m −2 ), olive oil ( = 32.0 mN m −2 ), and even hexadecane ( = 27.5 mN m −2 ) (Figure 9i). [67]The polluted superamphiphobic coatings could be effectively rinsed by water and hexadecane, with both solvent droplets wrapping around the sand and rolling off the surface.54c] This significantly expanded the application range of self-cleaning surfaces, such as in lubricating bearings, gears, and other industrial scenarios.In comparison to rain, alternative means of surface water generation, such as dew, condensate water, and morning fog, offer distinct advantages when it comes to facilitating self-cleaning processes. [68]These approaches are inherently gentler, making them particularly well-suited for delicate super-liquid-repellent surfaces.In contrast, rainfall often brings about intense precipitation, accompanied by gusty winds and the potential for scouring effects, which can prove detrimental to fragile micro-and nanosurface structures.Moreover, dew, fog, and similar phenomena  [62a] Copyright 2020, AAAS.e-g) Reproduced with permission. [64]Copyright 2020.American Chemical Society.h) Reproduced with permission.Copyright 2021, American Chemical Society.i) Reproduced with permission. [67]Copyright 2012, AAAS.54c] Copyright 2015, AAAS.54d] Copyright 2013, m) Reproduced with permission. [70]Copyright 2021, Elsevier.62b] Copyright 2020, Springer Nature.o) Reproduced with permission. [71]Copyright 2021, AAAS.
tend to manifest continuously during the night and early morning, generally in the form of smaller droplets.This characteristic enables frequent and uninterrupted cleaning, rendering it easier to dislodge and remove minute contaminants. [69]Rainfall, on the other hand, is irregular and largely dependent on prevailing weather conditions, making it less effective at small cleansing particles from surfaces.62b] In a 1322 s continuous fog environment, the dust on the superhydrophobic surface was completely removed (Figure 9o,p).Excitingly, PDRC technology itself has the potential to collect dew from the environment throughout the day via condensation, enabling passive dew-based self-cleaning in practical applications.For example, Haechler et al reported that at relative humidity > 90%, a superhydrophobic radiative cooling system could harvest dew even under high solar irradiation, thus providing a sustainable water source for self-cleaning (Figure 9q). [71]

Photocatalysis-Induced Self-Cleaning
As an efficient, safe and environmental-friendly purification technology, photocatalysis has been widely recognized by the international academic and industrial circles. [72]Photocatalytic self-cleaning is to utilize the oxidation-reduction ability of photocatalyst to achieve the purpose of purifying pollutants.The commonly-used photocatalysts include TiO 2 , zinc oxide (ZnO), tin oxide (SnO 2 ), zirconia (ZrO 2 ), cadmium sulfide (CdS) and other sulfide oxides as well as a small amount of silver salts. [73]TiO 2 , due to its high catalytic activity, light corrosion resistance, and low toxicity, has become the most valuable photocatalyst. [74]Unlike the self-cleaning of liquid repellent surfaces, photocatalytic self-cleaning technology is usually based on hydrophilicity/superhydrophilicity. [75]On superhydrophilic surfaces, liquids are almost completely spread out, forming a uniform water film that isolates the adhesion and adsorption between the soiling and the solid surface. [76]In the real world, wind and fog/rain are natural powers for photocatalysis-induced selfcleaning, helping to maintain surface cleanliness.Two successful examples of combining this technology with PDRC are the works of Wei et al in chapter 4.2.2 [36] and Zhou et al in chapter 4.2.4. [77]

Laboratory Contamination Characterization Method for PDRC Materials
As discussed in chapter 3.3.2, the characteristics of solid pollutants, such as shape, size, color, and the properties of cleaning liquids, such as surface energy and viscosity, can significantly affect the surface wettability to varying degrees, thus having different effects on the optical properties of PDRC materials.Therefore, it is imperative to establish unified and standardized testing methods to elucidate and compare the anti-contamination performance of PDRC materials.However, most researchers have not adequately addressed this issue in their works, and the selection of soiling is relatively random, including but not limited to dust, [35a,52,77,78] sand, [25a,79] inorganic powder, [52b] dyed liquids, [19a,80] dirty water [81] and mud, [24,51] among others.43b] This standard effectively simulates natural exposure equivalent to a period of three years.By incorporating a fixed proportion of four soiling mixtures, namely, soot, dust, particulate organic matter, and salts, this standard test allows for comprehensive evaluation of the changes in R̅ solar and εLWIR resulting from air pollutants deposition in the real world (Figure 10a).In Figure 10b, the soiling mixtures are evenly sprayed onto the sample surface through a spraying tank, followed by drying of the contaminated sample under an infrared heating lamp.Weathering steps before and after the soiling procedure replicate the effects of natural weathering of UV radiation and natural cleaning effects such as mist and precipitation.For specific quantitative parameters, readers are encouraged to refer to the ASTM D7897-18 standard content.Implementing standardized soiling testing, as recommended, will greatly enhance the comparability and reliability of research findings concerning the anti-contamination performance of PDRC materials.

Acid/Alkaline/Salty Solutions Corrosion
Acid rain, refers to atmospheric precipitation (e.g., rain, snow, frost) containing acidic substances, typically caused by factors such as the combustion of fossil fuels like coal, oil, and natural gas, as well as natural phenomena such as plant decay. [82]Additionally, alkaline precipitation is also observed in specific environments, such as regions with alkaline soils or rocks, or in proximity to factories that emit alkaline waste gases. [83]Therefore, acid/alkali corrosion represents a significant type of environmental aging that must be considered in polymer-based PDRC materials.Similar to the photothermal aging mechanism mentioned above, acid corrosion aging results from the destruction of chemical bonds within polymer-based materials, leading to changes in their physical and chemical properties.Specifically, chemical corrosion can cause a decline in toughness, strength, and other mechanical properties. [84]Fracturing of surface chemical bonds can also lead to embrittlement and hardening of materials, which reduces wear resistance. [85]Furthermore, acidic and alkaline environments can irreversibly damage and discolor the ultrawhite appearance of PDRC materials, thereby decreasing R̅ solar and making the sub-ambient daytime cooling ineffective. [79,86]Inorganic compounds commonly-used in PDRC, including metals and carbonates, can also be affected by acid and alkali corrosion.84c,87] To assess the chemical corrosion of PDRC materials, two regular characterization methods are commonly employed: corrosive liquid droplets surface deposition (Figure 11a) and corrosive solution immersion (Figure 11b).While surface deposition is a convenient way to test optical performance and wettability, it may not accurately represent the effect of possible corrosivity on optical properties since it is limited to part areas of the surface.On the other hand, immersing PDRC materials in corrosive  [44] Copyright 2014, Elsevier.solutions for a certain time and then observing their optical performance and wettability is a more reliable way to evaluate chemical corrosion resistance.This characterization method has been adopted in most works on PDRC materials, including Fan et al. [88] in 4.1.1.1,Wang et al., [86a] and Xue et al., [25a] Tian et al., [86b] Hu et al. [79] in 4.2.3 and Huang et al, [54b] in 4.3.2.

Designs and Fabrications of Anti-Environmental Aging Passive Daytime Radiative Cooling Materials
In recent years, with the advancement of micro/nano manufacturing technology and the emergence of interdisciplinary research, the anti-environmental aging performance of PDRC materials has become an important research field.By focusing on their anti-contamination, physical and chemical durability, significant breakthroughs have been accomplished.However, achieving multiple durabilities in a single PDRC material is no easy feat, as different anti-aging properties can sometimes interact or even hinder one another during the design process.
Overcoming these challenges requires finding ways to stack new anti-aging properties onto existing ones without sacrificing each other's performance.Moreover, the harmonious integration of PDRC and super-wetting self-cleaning technologies is an exciting frontier in surface science.The simplicity of the manufacturing process, environmental sustainability, and scalability are also crucial factors that determine the practical value of AEA-PDRC materials.This chapter summarizes the recent developments in designing and fabricating AEA-PDRC materials, including choosing environmental-durable raw materials, designing special micro-nano structures, optimizing surface chemistry and employing protective layers with environmental-aging resistance.

Choosing Environmental-Durable Raw Material
As discussed above, endowing PDRC materials with environmental aging resistance is the main focus of scientific research in the present day.To resist UV exposure, high temperature aging and flame burning, it is almost intuitive to start with the selection of raw material, because UV and thermal durability depends more on the physical and chemical properties of the raw material itself, and is not closely related to the derived structure.We discuss these strategies as follows.

Employing Raw Materials with Stable Chemical Bonds
The purpose of using chemical bond stabilized raw materials is to obtain UV and thermal durability, which is the basis for further structural design to achieve anti-contamination performance (to be discussed in detail in the chapter 4.2), requiring we understand from the molecular level.On the one hand, achieving excellent physical and chemical stability necessitates several fundamental characteristics.First, a simple and stable molecular structure is essential, without any chemical bonds that are prone to degradation.Moreover, the main chain should be composed of inert groups without reactive active groups to avoid any unnecessary chemical reactions.In other words, the chemical bonds must have a high energy, strength, and quantity to maintain stability.On the other hand, for PDRC, raw materials typically should also possess optical properties such as extremely-high refractive index, high thermal infrared emittance, and low solar absorption.
Only raw materials that meet the above conditions simultaneously can be considered ideal candidates for establishing AEA-PDRC materials.The optical data of corresponding materials are shown in Table 3, and they are all excellent candidates for building high optical performance PDRC.Note that the R̅ solar and εLWIR of PDRC materials are deeply affected by the derived structure and surface characteristics.Therefore, in this chapter, we can solely provide the intrinsic optical properties of the raw materials, and the structural design and surface modification will be illustrated explicitly in chapter 4.2.For R̅ solar , we provide the refractive index of raw materials for PDRC.Generally, a substantial difference in refractive indices contributes to a higher overall R̅ solar ; For εLWIR , we provide the main functional groups of polymeric raw materials and chemical bonds of inorganic raw materials, accompanied by their corresponding vibrational regions.Typically, the high εLWIR of polymers is enhanced by the collective stretch-ing vibrations of functional groups whose emission/absorption peaks overlap the atmospheric transparency window. [89]11g] Organic Compound and Polymer: Organic compounds, especially polymers, are the most commonly-used matrix materials for PDRC, mainly due to their good plasticity, processability, substrate adhesion, and large-scale application.We only list some classic examples as a reference here, and there are still many suitable and high-performance raw materials worth further exploration.
19a,25a,79,90] The large difference in refractive index between PVdF-HFP and air allows for effective scattering of sunlight, which results in high R̅ solar .Additionally, the stable fluorine and carbon-fluorine (C-F) bonds exhibit high chemical inertness and resistance to external chemical attack.Furthermore, the high melting point (above 150 °C) of PVdF-HFP confers good heat resistance and antioxidant properties, ensuring its physical and chemical stability.Previous studies have confirmed the powerful advantages of P(VdF-HFP) as a raw material for AEA-PDRC.Mandel et al. placed the porous (P(VdF-HFP) HP ) coating outdoors for one month and observed no significant decrease in optical performance, which is mainly attributed to the excellent UV and thermal stability, chemical  [19a] Copyright 2018, AAAS.25a] Copyright 2022, Elsevier.e) Reproduced with permission. [88]Copyright 2022.18c] Copyright 2022, Springer Nature.19c] Copyright 2021, Springer Nature.86b] Copyright 2021, American Chemical Society.97b] Copyright 2021, Springer Nature.k) Reproduced with permission. [99]Copyright 2021, American Chemical Society.l,m) Reproduced with permission. [100]Copyright 2021, Wiley-VCH.
19a] Even after accelerated aging in a high temperature and humidity environment for 14 days, the P(VdF-HFP) HP ) coating could still maintain a high R̅ solar and εLWIR of more than 0.9.25a] Moreover, Hu et al. also also demonstrated that a P(VdF-HFP) fiberbased superhydrophobic PDRC film has superior UV resistance, maintaining unchanged optical and wetting properties even after 10 days of UV exposure. [79]olydimethylsiloxane (PDMS) is also frequently utilized to construct AEA-PDRC materials, owing to following several aspects.First, PDMS is rich in high bond energy's, showing strong resistance to UV and thermal aging and chemical corrosion. [91]dditionally, PDMS molecules contain a plethora of methyl groups, which form large angles with the silicon-oxygen (Si-O) bonds generated by oxygen atoms.Consequently, the molecular chain structure assumes an irregular shape, leading to slower chain segment movement.This, in turn, makes the molecules less susceptible to depolymerization reactions. [92]Fan et al. conducted UV irradiation and acid and alkali solution immersion experiments upon the superhydrophobic porous PDMS cooling film (Figure 12e), respectively. [88]The results showed that the fluctuation of the sub-ambient temperature drop of the after-testing film did not exceed 10%, demonstrating the excellent environmental aging resistance of PDMS.Zhao et al. proposed a switchable PDMS film via mechanical force to achieve white/transparent conversion. [93]The film stayed unchanged optical performance after severe environmental aging, such as rain, snow, UV radiation, high (200°C) and ultra-low (−196 °C) temperatures.
43c,63b,92c,94] This is particularly important, as most anti-contamination liquid-repellent PDRC materials incorporate the use of fluorosilane chemicals.16a] Besides, Song et al also proved that 1H,1H,2H,2H-perfluorooctyltrichlorosilane-coated TiO 2 nanoparticles could withstand more than 1000 h of UV exposure (Figure 12f,g).Nevertheless, it is imperative to underscore that the manufacturing and laboratory processing of fluorosilicone chemicals entail the use of toxic solvents and procedures, thereby giving rise to a range of environmental concerns. [96]or instance, the production and processing of fluorosilicone chemicals typically involve the employment of toluene, xylene, ether, and various other organic solvents as carriers and diluents.96b] Last but not least, there are still many candidates with stable chemical bonds for AEA-PDRC, such as polyvinylidene fluoride, [52a,54b] polymethyl methacrylate (Figure 12h), [15c,19c] poly(tetrafluoroethylene) (Figure 12i), [14a,52b,86b] polymethylpenteneand, [11g,80a] etc., which will be reflected explicitly in the following chapters.Specially, natural polymers such as cellulose and lignin, found in almost all plants, are the most abundant natural materials on earth (Figure 12j). [97]15c,98] Caixeiro et al. achieved four times the scattering strength of ordinary micro-fiber paper by optimizing optics under the condition of using exclusively cellulose nanocrystals (Figure 12k). [99]S. Toivonen et al. et al. reported a breakthrough in the field of light transmission control in membranes using pure cellulose nanofibrils.By utilizing the coarsest fibrils to construct structures only a few microns thick, the film was able to achieve an impressive level of bright whiteness, surpassing the scattering efficiency of traditional white materials (Figure 12l,m). [100]Aside from that, due to its inherent excellent UV and thermal aging resistance, renewability, and biocompatibility, cellulose has become a promising and environmental-friendly candidate for AEA-PDRC raw materials.
Inorganic compound: Although several organic polymers with excellent performance are summarized above, the durability of organic compounds is still hard to compare with that of inorganic compound.This is mainly because the ionic and metallic bonds in inorganic compounds are usually more stable than the covalent bond in organic matter, which gives inorganic compounds higher durability in harsh environments. [101]Zhu et al. employed a molecular bonding strategy using coupling agents to bind Al 2 O 3 nanoparticles with diameter between 250 to 350 nm, which possessed strong scattering properties in the UV wavelength range, to silk.This innovative nano-processing technology not only compensated for the inherent absorption of proteins in the UV band, but also offered the added benefit of protect-ing silk from UV aging (Figure 13a).22b] The K 2 Ti 6 O 13 nanofiber filler has three major advantages: high solar reflectance and thermal emittance, high mechanical strength, and the ability to mitigate UV light.Furthermore, the 720 h outdoor sunlight exposure aging test and the comprehensive environmental exposure test over 30 days and confirmed the excellent anti-environmental aging performance (Figure 13c).Lin et al. creatively developed an allinorganic trilayer film, comprising of a monolayer of closely packed SiO 2 microspheres, a SiOxNy film, and a Ag reflective film (Figure 13d,e). [23]The SiOxNy layer and SiO 2 microspheres could generate highly narrowband selective thermal emittance, while the SiOxNy layer allowed sunlight to pass through and be reflected by the underlying Ag layer, resulting in high R̅ solar .Importantly, this all-inorganic material without any fragile organic components successfully avoided environmental aging and degradation under sunlight, while its dense internal structure prevented the infiltration of external liquid.The 3 months UV radiation test and the 3 weeks immersion test have proved its superb UV resistance and water immersion resistance.18c] Even after a 1000 h accelerated UV exposure test equivalent to 1 year of Florida natural sunshine, the optical properties and wettability of AACP coating have not been significantly affected, which could be attributed to the UV and thermal stability of TiO 2 and the strong C-F bonds in 1H,1H,2H,2H-perfluorooctyltrichlorosilane.Li et al. confirmed that adding a TiO 2 layer and an Al 2 O 3 layer on a hierarchically porous PES film could significantly improve its UV aging resistance (Figure 13f), especially the top Al 2 O 3 layer could compensate for the UV absorption problem of the TiO 2 layer to maximize R̅ solar (Figure 13g). [42]The ultra-white appearance of PES-TiO 2 -Al 2 O 3 composite film did not change after UV exposure testing (Figure 13h).

Using Raw Materials with Flame Retardancy
The flame retardancy of PDRC coatings or structural bulks is crucial for ensuring the safety of buildings, especially in case of emergencies. [24,51]The use of flame-retardant raw materials is a general strategy for achieving qualified fire resistance.Compared to polymeric materials widely-used in PDRC, inorganic materials have absolute advantages in ultra-high temperature resistance, such as silica (SiO 2 ), magnesium, aluminum, and other inorganic materials.Tsai et al. have fabricated a SiO 2 metafibers (SMF) film via the electrospinning technique, with a high R̅ solar of 0.97 and ε8−13m of 0.9.The thermal stability of the SiO 2 metafiber was evaluated by thermogravimetric analysis, which revealed no significant weight loss above  [102] Copyright 2021, Springer Nature.22b] Copyright 2022, Wiley-VCH.d,e) Reproduced with permission. [23]Copyright 2022, Wiley-VCH.f-h) Reproduced with permission. [42]Copyright 2023, Wiley-VCH.
1100 °C, indicating excellent thermal resistance.Furthermore, the SMF film exhibited superior flame resistance, with no obvious changes in appearance observed after continuous flame combustion for 300 s, unlike other common polymer fiber-based materials that rapidly turned to ashes in a matter of seconds (Figure 14a,b).Crucially, SMF film retained the flexibility equivalent to polymer fibers, making them ideal for a wide range of applications.Chen et al. also demonstrated that incorporating SiO 2 particles into cellulose-based PDRC bulk could significantly improve the thermal stability and flame retardancy (Figure 14c,d).
Additionally, some thermosetting plastics with outstanding thermal stability could also be promising candidates for developing flame retardant PDRC materials.Melamine-formaldehyde (MF) is a resin material that finds extensive application in various industries, including furniture and vehicle construction, owing to its exceptional thermal and mechanical stability.The unique feature of MF is its ability to occur curing and crosslinking at temperatures exceeding 160 °C, resulting in increased hardness and flame retardancy without the need for any extra curing agents. [24,103]Based on this, Tian et al. developed a facile processing method to manufacture a porous MF bulk using MF particles. [24]A wide size distribution of MF particles formed from particle coalescence and other interactions during the hot-pressing process, resulting in strong sunlight scattering and excellent PDRC performance (Figure 14e).Besides, the MF bulk showed remarkable flame retardancy for building safety, ig-niting in a flame of 1430 °C and self-extinguishing after 15 s (Figure 14f).

Designing Special Micro-Nano Structures with Optimized Surface Chemistry
As discussed in chapter 2.2, R̅ solar is usually determined by the derived structure.In terms of anti-environmental aging performance, apart from the inherent properties of the raw materials as we mentioned in the last chapter, the dual-scale architecture and surface chemical modification are key elements in constructing liquid repellent surfaces, thereby endowing PDRC materials with the ability of repelling soiling.Therefore, designing special micro/nanostructures to improve optical performance and achieve liquid repellency simultaneously is also of interest.This chapter is the core for designing AEA-PDRC materials, which can be mainly divided into four structural designs: hierarchically porous structure (Figure 15a), micro-nano pigments-assembled dual-scale structure (Figure 15b), particles/pigments-combined porous structure (Figure 15c) and surface-patterned structure (Figure 15d).

Hierarchically Porous Structure
The air/solid interface at the micro-nano scale has shown to effectively scatter light, with air voids of matching size to the  [51] Copyright 2023, Elsevier.22b] Copyright 2022, Wiley-VCH.e,f) Reproduced with permission. [24]Copyright 2021, Elsevier.solar wavelength resulting in high R̅ solar .Various fabrication techniques, such as the phase-inversion-based method, [15b,19a,104] solgel method, [105] and micro-emulsion method, [88] have been employed to produce polymeric materials with controllable porous structures.In addition, a well-designed porous structure can trap air on the surface and lift droplets to realize the Cassie-Baxter state, thereby achieving superhydrophobicity.Therefore, the intrinsic properties of raw materials and the overall structural design play crucial roles in determining the anti-environmental aging properties.Accordingly, the air void-based approach has emerged as a practical, versatile, and substrate-independent strategy for developing AEA-PDRC materials, showing great promise for commercial applications.
Porous Polymeric Coating/Film: In chapter 2.2.2, we have thoroughly demonstrated that porous structures, which are excellent light scatterers, serve as ideal models for PDRC in terms of optics.In recent years, material scientists have made strides in creating diversified porous materials that enable sub-ambient cooling during the daytime.As we mentioned in 4.1, the utilization of raw materials that resist UV and thermal aging, chemical corrosion, and mechanical abrasion can directly produce AEA-PDRC mate-rials.Furthermore, chemical treatments and fine pore regulation can help create surfaces that are liquid-repellent and resistant to surface contamination.
19a] Specifically, the precursor solution consisted of P(VdF HFP) (polymer), water (non-solvent) and acetone (solvent).The wet coating naturally dried in air, and the rapid evaporation of acetone accelerated the phase separation between P(VdF-HFP) and water, forming micro-nanopores in the dry coating that effectively scatter sunlight and enhance ε8−13m (Figure 16b).The surface roughness caused by the hierarchical structure and low surface energy of P(VdF-HFP) provided a * of 110°(Figure 16c).This work opened a new chapter in porous, paint-based, AEA-PDRC materials and brought excellent prospects.It garnered the attention of many material researchers, who continued to promote its development and inspired a lot of follow-up works.
tune micro-nano porous structures to strengthen the surface roughness.Because as we can see, although the P(VdF-HFP) HP coating reached excellent hydrophobicity, the lack of surface roughness made it impossible to achieve superhydrophobicity.Excitingly, micro-nano pores exhibit scale overlap and consistency in constructing high R̅ solar and liquid repellency.By ac-curately matching the distribution of pores and the wavelength of the solar spectrum to provide high sunlight scattering efficiency, while the surface dual-scale composite structure formed by air voids could minimize liquid-solid contact fraction and further decrease surface adhesion.22c] The micro-nano rough structure required to achieve superhydrophobicity was formed due to the competitive mass transfer diffusion process of two mixed polymers and the different volatilization mechanisms of two component mixed solvents.The derived SRCP coating contained abundant micropores with diameters from 2 to 10 μm, connected by multi-scale 100-500 nm nanopores, creating an ideal dual-scale rough surface to capture air pockets, where water droplets could completely rebound (Figure 16d,e).Besides, the self-cleaning ability of the SRCP coating to protect and repair cooling performance is also important.The surface temperature of SRCP samples before and after contamination was basically unchanged (Figure 16f).In contrast, the hydrophobic porous P(VdF-HFP) coating, representing the state-of-the-art levels of optics, was heated up by 15.8 °C after contamination, rendering the cooling ineffective (Figure 16g).19c] As depicted in Figure 15h, A simple unidirectional friction assembly approach was used to prepare a tightly arranged hexagonal 5 μm SiO 2 microspheres array.Then, the acetone dispersion composed of PMMA and 200 nm SiO 2 nanospheres was infiltrated into the monolayer template.After the acetone volatilized, the regular and symmetrical micropores (≈4.6 μm in diameter) array and the random nanopores (≈250 nm in diameter) were achieved by etching SiO 2 nanospheres and SiO 2 microspheres template in aqueous hydrofluoric acid solution (Figure 16i).The surface modification of fluorosilane effectively improved the liquid repellency of PMMA HPA film, and had almost no negative effect on the optical properties.In particular, compared with three different structural PMMA membranes (flat non-pore PMMA, only nanopore PMMA NP and only micropore PMMA MPA ) modified by the same chemical, PMMA HPA film was the only one that can accomplish superhydrophobicity, confirming the significant contribution of micro-nano roughness raised by multi-scale pores to liquid repellency (Figure 16j).25b] The continuous pores distribution from 200 nm to 8 μm resulted in strong Mie scattering and high R̅ solar , while the micro-nano roughness of the surface and low surface energy of the methyl and methylene groups led to superhydrophobicity and excellent self-cleaning performance (Figure 16l,m).
Moreover, the use of environmentally-friendly raw materials to build porous PDRC materials can greatly reduce secondary pollution.Yue et al. developed a porous cellulose-based radiative cooler from waste paper, which integrated high optical performance, thermal insulation and superhydrophobicity (Figure 16n). [78]The cooler contained abundant micro-nano pores (porosity 91.3 ± 0.2%) and was coupled with a thin silane layer to transform its hydrophilicity into superhydrophobicity (Figure 16o).Similarly, Fan et al. employed a facile and eco-friendly emulsion templating technology to create a superhydrophobic porous PDRC film. [88]ntriguingly, prolonged mechanical stirring of water and incompatible PDMS resulted in the formation of a uniform and stable opalescent water-in-PDMS emulsion.Upon heating, the emul-sion yielded a cured porous PDMS film, which could be further refined by a simple surface sanding method to increase surface roughness.Leveraging inherent low surface energy of PDMS, this approach enabled the achievement of remarkable superhydrophobicity.
Porous Structural Bulk: The combination of intrinsically durable porous materials and inert low surface energy chemical modification presents an ideal strategy for building AEA-PDRC.This approach is not limited to surface materials, but also applies to bulk materials that can serve as mechanical supports.16a] This cooling wood was created by densifying natural wood without lignin, leading to a large number of disordered pores that scatter sunlight strongly, generating high R̅ solar .Enhanced infrared emission from collective stretching vibrations of cellulose fibers between 770 and 1250 cm −1 further contributed to high ε8−13m (Figure 17a).As a high-strength structural material, the cooling wood demonstrated excellent mechanical properties, including hardness, scratch hardness, bending strength, and compressive strength, which were several times higher than natural wood (Figure 17b).Surface modification enabled the super cooling wood to accomplish superhydrophobicity (Figure 17c).
17a] The thermal conductivity of PEA (28 ± 5 mW m −1 k −1 ) is nearly as low as that of air 26 mW m −1 k −1 ), making it highly suitable for use in water cooling systems and food preservation.Importantly, imparting environmental durability to aerogel could considerably enhance its active lifespan and reduce maintenance costs.Shan et al. developed an aerogel-functionalized polyurethane (TPU) film (AFTPU film) for sub-ambient cooling via the non-solvent phase separation method (Figure 17d). [107]The AFTPU film comprised a TPU substrate, with superhydrophobic SiO 2 aerogel (SSA) particles serving as the functional units.The DMF solutions of TPU, containing varying concentrations of SSA particles, were applied to the solid substrate, resulting in phase-separated films with strong light scattering, transitioning from a translucent state to an opaque white state upon exchange with water.The AFTPU film showed excellent optical performance and remarkable daytime cooling capacity, coupled with favorable hydrophobicity at a * of 135°.Moreover, AFTPU film can be shaped into various forms, thanks to its high flexibility and tailorability.17c] The SC-PLA aerogel possessed much richer multi-scale air pores than pristine poly-l-lactic acid (PLLA) aerogels, enabling them to scatter sunlight more effectively.By increasing the water content in a specific range, the surface roughness of SC-PLA aerogels increased significantly, forming a precise layered network composed of dual-scale micro-nano pores Fabrication process and schematic of the formation of micro-nano structure of the SC-PLA aerogel.f) Water contact angles of the PLA aerogels under various conditions.g) Self-cleaning of the SC-PLA aerogel with 2 ml water (L-D-2).16a] Copyright 2019, AAAS.d) Reproduced with permission. [107]Copyright 2022, Wiley-VCH.17c] Copyright 2022, Wiley-VCH.
that achieved superhydrophobicity when the water with a volume of 2 ml (Figure 17f), demonstrating the self-cleaning ability (Figure 17g).

Pigments-Assembled Dual-Scale Structure
Pigment-based paints and/or coatings are widely-used in the field of high-albedo roof materials due to their facile fabrication technique, low economic cost and eco-friendly solvents. [108]18a] This coating leveraged mid-infrared broadband radiation to deliver heat into outer space and carried out dynamic heat exchange within the atmospheric long-wave radiation, strengthening the daytime cooling and suppressed the nighttime over-cooling.18b] However, due to the lack of necessary surface roughness, the pigments-embedded matrix structure is difficult to achieve surface liquid repellency.18c] Specifically, AACP, which was an ethanol suspension of fluorosilane-coated TiO 2 nanoparticles, could be sprayed onto hard substrates to form a hierarchically dual-scale pigments (diameter from 100 to 800 nm approximately) assembled coating after the solvent evaporation.Compared to the structure of TiO 2 particles-embedded polymer matrix, the large refractive index difference between TiO 2 particles and air enabled the AACP coating to scatter sunlight more strongly, resulting in a higher R̅ solar (Figure 18a).Additionally, compared to porous structure, the derived topology composed of randomlypacked hydrophobic TiO 2 nanoparticles have a lower solid-liquid contact area, creating a dual-scale micro-nano surface roughness (Figure 18d), which could capture more air pockets, further reducing surface adhesion.The moderate packing density of nanoparticles effectively balanced and ensured superior optical performance and liquid repellency (Figure 18b,c).The R̅ solar of the tested AACP coating only decreased by 0.4% compared to the unaged ones after a simulated accelerated aging test equivalent to 3 years of outdoor natural soiling (Figure 18e).Furthermore, AACP coating also showed significant advantages in resisting heavy contamination, such as mud with high viscosity (Figure 18f).Moreover, adding commercial adhesives between the AACP coating and substrate greatly improved the robustness, which could resist external force damage such as high-speed water jet impact, sand falling abrasion, and even tape-peel (Figure 18g).This strategy of completely eliminating negative effects caused by polymer binders provided more ideas for the design of AEA-PDRC materials.The integration of multiple strategies would greatly promote the development and application of AEA-PDRC materials in the real world (Figure 18h,i).
In addition, many metal oxides, as pigments simultaneously, are also excellent photocatalysts and can provide additional self-cleaning manners through photocatalytic oxidation reactions.Wei et al. developed a composite film composed of SiO 2 nanospheres coated with a layer of TiO 2 and ZnO nanorods (SiO 2 @TiO 2 /ZnO) for use in smart windows. [36]The self-cleaning performance of the coating was evaluated through degradation experiments involving methylene blue and the decomposition of stearic acid.The methylene blue on the surface of the coating gradually decomposed and became colorless under sunlight, with the decomposition products easily washed away by water.This excellent photocatalytic activity of SiO 2 @TiO 2 /ZnO film was mainly attributed to the wide band gap of both TiO 2 and ZnO (greater than 3 eV), which prolonged the life of electron-hole pairs generated by electronic ex-citation and improved the efficiency of photocatalytic oxidation reactions.

Particles/Pigments-Combined Porous Structure
In chapters 4.2.1 and 4.2.2, we provide a detailed overview of the powerful advantages of air-voids and pigments in constructing AEA-PDRC materials.Although each strategy can improve the performance of PDRC, the complementary advantages of them have the potential to achieve even better optical properties.In a recent study, Liu et al. demonstrated a novel PDRC coating, incorporating BaSO 4 nanoparticles-embedded porous ethyl cellulose matrix, attained an exceptional R̅ solar of 0.986.17b] This outstanding performance can be attributed to a combination of factors, including the high scattering efficiency of micro-nano pores and collective behavior of Mie scattering from multi-scale BaSO 4 particles.Specifically, the micropores can strongly scatter the visible and near-infrared light, and the nanopores further enhance the scattering effect in the The inset shows the water contact angle.f) Water droplets detach from the P(VdF-HFP)/SiO 2 film surface.g) Microstructure schematic diagram and preparation process of SiO 2 microspheres-polyvinylidene fluoride/tetraethyl orthosilicate fiber composite film.h,i) SEM images of the PVdF-HFP/SiO 2 films.The inset in part h) is the water contact angle image.j) Surface-wetting state and SEM image of microstructure of PTFE particles-coated cellulose fiber composite film.k) Self-cleaning process of PTFE particles-coated cellulose fiber composite film.a-d) Reproduced with permission. [107]Copyright 2022, American Chemical Society.25a] Copyright 2022, Elsevier.g-i) Reproduced with permission. [110]Copyright 2019, Wiley-VCH.j,k) Reproduced with permission. [79]Copyright 2022, American Chemical Society.
UV-visible region.BaSO 4 particles can effectively scatter the entire solar spectrum, especially in the visible region (Figure 19b).These synergies provide broad spectrum scattering and high reflectance across the entire solar band.Aside from that, the stretching vibration of C-O-C within the atmospheric transparent window in ethyl cellulose and the high IR-active phonon mode of BaSO 4 also contribute to the promotion of ε8−13m .This high optical performance is significant for strong cooling ability in the real environment, achieving a maximum net cooling power of 125.8 W m −2 at a heat balance state (Figure 19c).The coating also demonstrated excellent hydrophobicity (Figure 19d), mechanical stability, and recyclability.
In addition, the enhanced dual-scale hierarchical structure formed by air voids and pigments can further increase surface roughness, synergistically strengthening the liquid repellency.25a] Compared to the unmodified porous P(VdF-HFP) surface which had a * of 148°± 2°, the addition of 0.5-2 μm SiO 2 nanoparticles led to a dramatic increase in surface micro-nano roughness, leading to an impressively high * of 163°± 2°and a near-perfect roll-off angle of 0.1 ± 0.1°(Figure 19e), The ultra-low solid-liquid adhesion facilitated droplet separation and roll-off from the surface (Figure 19f).86a] Notably, an optimal amount of SiO 2 particles accelerated the phase separation of EPDM to form pores, improving the R̅ solar to 0.96.Furthermore, fiber-based porous materials can be produced in a large scale by electrospinning, microfluidic spinning technology or electric spray method, which have garnered extensive attention owing to its straightforward manufacturing process and low cost. [109]Wang et al. recently presented a novel flexible film, based on polyvinylidene fluoride/tetraethyl orthosilicate fiber and randomly distributed SiO 2 microspheres, which showed excellent sub-ambient daytime cooling performance (Figure 19g). [110]The exceptional optical scattering from the porous nanofibers network, combined with the intrinsic phonon polaron resonance of SiO 2 microspheres, led to enhanced R̅ solar and ε8−13m .In a similar vein, Hu et al. developed a superhydrophobic flexible film by incorporating SiO 2 nanoparticles into P(VdF-HFP) fiber frameworks (Figure 19h,i). [79]The low surface energy of SiO 2 and the air cushion formed by the micro-nano surface structure were the keys to achieving superhydrophobicity.In addition, poly(tetrafluoroethylene) (PTFE) particles with low surface energy are also an ideal choice for modifing fiber-based PDRC materials.86b] 4.2.4.80b,111] Such microstructures can reflect sunlight effectively, a feature commonly observed in natural organisms.62b] Therefore, a well-designed surface-patterned material can exhibit dual functions by taking advantage of the structural commonalities between photonic structural color and surface wettability.
Learning from nature is a common strategy for designing surface microstructures.For instance, the surface of the forewing of the longicorn beetle is covered with fluff, with each fluff being a triangular hierarchical rough structure composed of one smooth facet and two corrugated rough facets that can resist color fading and show structural color characteristics of photonic crystals (Figure 20a-c). [114]92c,115] Inspired by this, Zhang et al. employed photolithography to manufacture an inverted-micropyramid shaped silicon wafer as a template (Figure 20d).A PDMS precursor solution with randomly distributed Al 2 O 3 microspheres was spun onto the template.80b] The top invertedmicropyramid pattern of the Bio-RC film led to a * of 138°( Figure 20e,f), much higher than the * of 114°observed on flat PDMS surface.The Bio-RC film also demonstrated great flexibility and elasticity, retaining its functionality even after alternating torsion and hundreds of stretching cycles.111d] Al-though the primary aim of this grating pattern was to optimize the optical performance, it also synergistically improved surface liquid repellency (Figure 20i).This was mainly attributed to the grating pattern successfully trapped air under droplets, leading to the Cassie-Baxter state.Zhou et al. reported a surface-patterned bifunctional PDRC film based on a nano porous polyethylene matrix via a template-molding technique (Figure 20j).On the one hand, the micropillar array pattern on the surface effectively reduced solid-liquid adhesion, thereby inducing the realization of superhydrophobicity.Compared with flat hydrophobic nano polyethylene film, the introduction of micropillar array pattern increased the contact angle from 120°± 2°to 158°± 2°.On the other hand, ZnO nanoparticles, as photocatalysts, could absorb UV light and produce reactive oxygen species, resulting in bactericidal effects (Figure 20k).The soiling contamination and bacterial growth experiments further demonstrated the excellent selfcleaning performance and anti-bacterial function.
In addition, incorporating different coatings can not only improve the performance of surface-patterned PDRC materials, but also provide them with more functions, thus broadening their range of applications.This includes, but is not limited to, cooling intensification layers, [116] self-adaptive switching layers, [11h,117] and colorful layers that meet aesthetic needs. [118]For example, Wang et al. designed a Janus emitter (JET) to further enhance the cooling in the enclosed spaces (Figure 20l). [116]Briefly, the top layer of 4-μm PDMS layer on Ag-coated micro-patterned quartz frame avoided environmental radiation heat through ideal narrowband emission, and the bottom layer of 10 μm thick PDMS layer carried out broadband emission to absorb accumulated heat in space.The experimental results also showed that JET is more effective in cooling enclosed spaces than unidirectional sky radiative materials.Addressing the challenge of excess cooling during winter, the development of PDRC technology with adaptive solar spectrum regulation capabilities is imperative to achieve the desired effect of "warm winters and cool summers."105a] Tang et al. designed a multi-layer surface-patterned temperatureadaptive radiative coating (TARC) based on VO 2 , which could automatically adjust indoor temperature through roofs and walls (Figure 20m,n). [117]Importantly, tungsten doping of 1.5% could effectively decrease the phase transition temperature from 67 °C to around room temperature (25 °C), thereby the ε8−13um of TARC could be switched from 0.2 to 0.9.Moreover, Ding et al. prepared a radiative cooler featuring a truncated SiO 2 microcones array through self-assembly and reactive ion etching (Figure 20o). [118]ue to the scattering effect induced by the truncated microcone array, the cooler presented a continuous change from red to blue at different incident light angles, ensuring high optical performance while simultaneously satisfying aesthetic requirements.
14d,22b,25a,54b,95,111d] and colorful layers that meet aesthetic needs.In fact, this strategy of overlapping functionality is a comprehensive application of the aforementioned raw material selection and structural design, and each single-layer design can be found in the above discussion.However, integrating multiple functions into a single material remains a challenge due to the interdisciplinary nature of the field, and the fact that some functions may be mutually exclusive.Therefore, adding additional functions without com-promising the optical ability is the most fundamental design principle.As materials science continues to evolve, researchers are exploring new ways to endow more functions to multi-layer PDRC materials and push the boundaries of what is possible in the field.
to the solar spectrum to establish muti-layer films has proved to be a great potential for anti-contamination PDRC.35b] The micronano rough structure of the superhydrophobic layer, modeled on the Cassie-Baxter model, enabled the trapping of air pockets on the surface, thereby enhancing its superhydrophobicity.Notably, even after being in contact with the coating surface for 24 h, water and hexadecane could still appear as spheres (Figure 21a) and repelled any inorganic contaminants encoun-tered while the surface was inclined at a 2°(Figure 21b), effectively completing the self-cleaning process.Intriguingly, chemical reactions during the manufacturing of the superhydrophobic layer led to the formation of new bonds and stretching vibrations within the thermal infrared region (Figure 21c).As a result, the bilayer film's emittance in the atmospheric transparent window (8-14 μm) increased from 0.950 to 0.954, and the emittance in the wavelength range of 2.5-24 μm was also strengthened from 0.892 to 0.921.
At the micro and nano scale, the structures necessary for constructing liquid-repellent surfaces overlap with and align with the requirements for optimal solar light scattering.Therefore, a well-designed liquid-repellent top layer not only maintains the optical performance of PDRC materials, but can also lead to synergistic enhancements in R̅ solar .This represents a more advanced and desirable design strategy compared to applying a sunlight-transparent layer.11g] This metamaterial could achieve both high R̅ solar and high ε8−13m when backed with a thin silver reflective layer, possessing the PDRC capacity.80a] They added SiO 2 , molybdate, mica, and rare earth silicate to the TPX matrix (Figure 21f), which broadened the infrared absorption peak across the entire atmospheric transparency window and effectively promoted selective emittance.They also deposited hydrophobic mica and TiO 2 particles on the top layer, increasing surface roughness and resulting in great self-cleaning performance (Figure 2g).Wang et al. drew inspiration from the multi-scale fluffs of long-horned beetles to create an organic-inorganic bilayer film that combined PDRC and superhydrophobicity. [52b] The top layer composed of PTFE with a "ridge" structure and randomly distributed nanoparticles, could not only strongly scattering sunlight (Figure 21h), but also provided large surface roughness to construct a superhydrophobic surface (Figure 21i).The micro-nano porous ceramic bottom layer with lattice absorption assisted in enhancing ε8−13m .The bilayer film maintained its robust superhydrophobicity after tape-peeling, jet impacting, knife scraping, abrasive paper abrasion, and even 100 days exposure in the real-world.Li et al. cleverly proposed an inorganic-organic composite trilayer film for constructing a superhydrophobic and anti-UV radiative cooler (Figure 21j,k). [42]From bottom to top, the trilayer film was composed of porous polyether sulfone (Figure 21l), TiO 2 nanoparticles UV absorption layer, and Al 2 O 3 nanoparticles superhydrophobic top layer (Figure 21m).Compared to pristine PES film, the rough structure of nanoparticles on the top layer effectively increased the * from 41 °to 168 °(Figure 21n).Furthermore, color, as an aesthetic demand, adding a colored top layer, making it possible to create colorful AEA-PDRC materials. [118]The mechanism of color generation can be divided into two categories, one is based on the selective light absorption of dyes, and the other is based on the selective light reflection, known as structural color.It is also worth mentioning that selectively absorbing light to obtain color is detrimental to cooling.For the first type, Chen et al. reported a bilayer colorful PDRC film with a thin colorant top layer and a typical PDRC under layer with air voids or pigments (Figure 21o). [119]This design allowed near-to-short wavelength infrared light to pass through the colorant layer and be reflected by the PDRC under layer, resulting in high R̅ solar .35a] The top layer, consisting of perfluorooctyltriethoxysilane and hexafluorobutyl acrylate grafted SiO 2 particles and pigments, provided diversified colors while maintaining excellent optical and wetting performance even after abrasion and UV exposure.52a] While maintaining high R̅ solar and UV resistance, the addition of colorants produced different colors of red, green, and blue, and provided surface roughness to construct a superhydrophobic surface.15b] The periodic helical photonic nanostructures of the CNC self-assembled top layer could selectively reflect visible light, resulting in a range of colors depending on the pitch size.Besides, the sunlight penetrating the CNC layer in other wavelengths would be reflected by the ethyl cellulose bottom layer, thereby minimizing the absorption of sunlight and achieving high R̅ solar .Therefore, future endeavors may focus on improving the environmental durability of sustainable colorful PDRC materials.

Adding an Anti-Chemical Corrosion Air-Cushion Layer
Lastly, it is worth noting that the liquid repellent outer layer is also an effective strategy to protect PDRC materials from chemical corrosion.For instance, Hu et al. ascribed the remarkable chemical resistance of P(VdF-HFP) fiber-SiO 2 particle composite film to two points: the cavitation structure of the liquid repellent layer that impeded the penetration of corrosive liquids and the inherent inertness of fluoride. [79]Likewise, Huang et al demonstrated that the air cushion at the interface between the corrosive solution and the superhydrophobic surface protected the PDRC film from erosion by acid/alkali solutions.25a] Based on the above design strategies and fabrication techniques already discussed, we selected some representative works with excellent environmental durability listed in Table 4 as a reference for readers.

Challenges and Opportunities
While many successful air voids-based, pigments-based, and micro-patterned strategies have been developed for building AEA-PDRC, challenges and issues still remain.The major technical ones in our view are listed below, as well as corresponding potential solutions: 1) Optimizing optical and wettable performance with minimal use of material.Pigments, as one of the oldest and classical strategy to construct AEA-PDRC, possess ideal surface micro-nano structures to achieve super-liquid-repellency.In addition, the inherent environmental aging resistance of inorganic pigments makes the derived materials resistant to photothermal aging, chemical corrosion and so on.However, challenges such as the narrow band gap width of inorganic pigments lead to light absorption in specific bands, thus limiting the maximum theoretical limit of R̅ solar .Typically, the  high R̅ solar of pigments-based AEA-PDRC materials is accomplished by substantially increasing the amount of pigments filler, however this is not an optimal solution for optical design.Although air voids-based strategies have brought the optical properties of PDRC materials to the state-of-the-art level, the surface roughness shaped by the porous structure has yet to be improved.As of now, the surfaces of air-void-based AEA-PDRC materials remain relatively flat, exhibiting insufficient micro-and nano-roughness, which translates into a sizable droplet roll-off angle, directly impacting their self-cleaning performance.Lastly, there is still room for further improvement in the large-scale fabrication and application of micropatterned AEA-PDRC materials.In the future, synergies between multiple strategies should be worth exploring.2) Enhancing surface robustness.62b] This inherent vulnerability renders these surfaces prone to fragility, abrasion, and even failure, posing a significant challenge for superhydrophobic PDRC materials, regardless of whether they are constructed using pigments or airvoids.One potential approach to address this challenge is to bolster the adhesion between the coating and the substrate by introducing adhesives, particularly effective for matrix-free coatings with delicate micro-nano structures.However, this self-sacrificing-based strategy may not fully resolve the robustness of the top layer and could potentially compromise optical performance over extended periods of use, given the trade-off with coating thickness.An alternative strategy involves decoupling surface wettability and mechanical stability by optimizing the design at each structural scale.For instance, creating a resilient "micro-armor" that can withstand wear may offer a solution, although its potential impact on optical properties warrants further exploration.3) Strengthening environmental durability.Choosing raw materials with stable chemical bonds is usually a common strategy to enhance environmental durability.Nevertheless, environmental durability is a multifaceted challenge, encompassing factors such as photothermal resistance, resistance to chemical corrosion, mechanical stability, and more.Notably, different aspects of durability can at times be mutually exclusive.For instance, while the assembly structure of inorganic pigments offers superior photothermal durability, it may compromise mechanical stability due to the absence of polymer binders.Therefore, exploring integrated strategies that balance and guarantee different durability should gain more attention in the future.4) Reducing glare and improving colorism.20b] One viable avenue for improvement involves the incorporation of a top colorant layer.A common approach entails the addition of a pigments-based colorant layer, which serves a dual purpose.Not only does it effectively diminish glare and enrich coloration, but it also fosters the development of nanostructures that resist contamination.However, environmental con-cerns associated with pigments-based approaches warrant attention.An alternative strategy revolves around the creation of a structural color layer founded on natural substances like cellulose.This approach holds the promise of circumventing the introduction of inorganic contaminants.Remarkably, there is a dearth of reported studies pertaining to the establishment of super-repellent PDRC materials rooted in cellulose, highlighting a promising avenue for future research and innovation in this domain.5) Seeking environmentally friendly raw materials and process routes.Currently, the raw materials utilized in the preparation of AEA-PDRC predominantly include non-degradable inorganic pigments, polymers, and environmentally harmful fluorine compounds, owing to the demand for photothermal durability and the requisite surface modifications.Moreover, the fabrication process for AEA-PDRC materials typically relies on organic solvents such as acetone, toluene, ethanol, and ether as carriers and diluents.15b,43c] In the future, more attention should be paid to the development of natural componentsaqueous solvent-based AEA-PDRC materials.

Conclusions and Outlook
In this review, we provide an overall summary of recent advances in the field of anti-environmental aging PDRC (AEA-PDRC).This interdisciplinary research category requires a clever exploitation of commonalities related to different types of durability in order to facilitate the development of comprehensive anti-aging performances.We specifically focus on the optimization of optical properties and raw material selection for PDRC, as well as the general design principles of contamination resistance, including the construction of liquid repellent surfaces and photocatalysisinduced superhydrophilic surface.We also examine the internal damage causes of PDRC resulting from UV exposure, thermal aging, flame burning and chemical corrosion, and corresponding characterization methods.Lastly, the designs, fabrication techniques, and performances of PDRC materials that can maintain long-term working in real-world environment are reviewed and summarized.
First of all, the development of new strategies and materials for establishing AEA-PDRC with comprehensive environmentalaging resistance is of utmost importance.Outdoor PDRC materials are primarily affected by environmental pollution, wind erosion, UV radiation and thermal aging.Therefore, it is critical to prioritize resistance to soiling deposition, photothermal aging, chemical corrosion, and rain impact, while other durability's can be considered secondary.Among them, UV aging resistance and contamination resistance are two of the most significant and challenging to design.UV resistance is typically accomplished by employing organic materials with stable chemical bonds or by directly using inorganic compounds and removing fragile polymeric components.To achieve contamination resistance, a popular strategy is to create a liquid repellent self-cleaning surface based on optical scatterers supplemented by appropriate structural design and chemical modification.This strategy is widely applicable, regardless of whether it is based on air-voids, pigments, or photonics.While most of these strategies can improve durability to some extent when utilized alone, the effects of diversified synergistic strategies still require further exploration.For example, the delicate surface texture and unstable air cushion present a major obstacle and challenge to the liquid repellent surface.However, most strategies to improve robustness and durability of liquid repellency have not yet to be applied to AEA-PDRC.Thus, developing new strategies and advanced composites that can substantially balance and guarantee multiple antiaging performances to build comprehensively AEA-PDRC materials should be a priority for future research.
Second, standard and universal assessments should be established to evaluate the aging resistance of PDRC materials.Currently, there is a lack of uniformity in anti-aging tests of PDRC materials, which impedes the comparison of results across different studies.For instance, parameters of soiling, such as surface energy, size, and appearance, directly affect the self-cleaning performance of liquid-repellent surfaces.Additionally, the intensity and exposure time of UV irradiation have varying effects on PDRC materials.Therefore, it is significant to determine which accelerated simulation test best mimics real-world environmental aging conditions.To address these issues, it is recommended that ASTM standards and other industrial standards should be utilized for their reliability and repeatability.The use of these unified standard tests can greatly improve our understanding of environmental aging mechanisms, thereby promoting the development and application of PDRC toward practicality.
Last but not least, it is still meaningful to develop simple, lowcost and green routes/raw materials to build environmentally friendly AEA-PDRC materials.For example, traditional solventbased conversion methods, commonly-used to build porous structures, rely on irritant and toxic organic solvents like acetone and ethanol, restricting their large-scale application.Therefore, alternative approaches utilizing greener solvents are being explored.Furthermore, the use of non-degradable inorganic pigments such as TiO 2 and BaSO 4 needs to be minimized, if not eliminated, as they pose a threat to the environment.Nanocellulose technology that allows achieving the same or even better optical performances of commercial scattering enhancers is a promising research direction.Another critical concern is the use of fluoride compounds, commonly-employed for surface modification, which lead to serious health risks.These compounds may face partial or complete prohibition in the near future.

Figure 2 .
Figure 2. Passive daytime radiative cooling.a) Schematic diagram of the fundamental and working principle of PDRC.b) AM 1.5 standard solar spectrum based on ASTM G173-03.c) Spectrum of a blackbody surface with a temperature of 300 K (solid black curve) and the atmospheric transparency window in the infrared regions (highlighted in blue background).d) Ideal emittance spectrum of broadband radiator and selective narrowband radiator.Insetshowing the net radiative cooling power of two emitters as a function of the temperature difference between the emitter surfaces and their surroundings.c) Reproduced with permission.[11c]Copyright 2019, AIP Publishing.d) Adapted with permission.[11b]Copyright 2020, AAAS.

Figure 3 .
Figure 3. Net cooling power as a function of ambient temperature for various R̅ solar under different solar irradiance: a) 500 W m −2 , b) 800 W m −2 and c) 1000 W m −2 .Passive cooling is difficult to achieve when R̅ solar < 0.9 under the strong sunlight even if the material has a perfect LWIR emittance.

Figure 4 .
Figure 4. Scatterers-embedded matrix.a) Schematic diagram of scatterers embedded in a matrix.b) The scattering efficiency of a single spherical particle as a function of particle diameter over wavelength range of 0.3-2.5 μm in different scattering media.c) The calculated scattering efficiency as a function of scatterer size and incident light wavelength.The strong scattering peaks from scatterers with various sizes cover the whole solar spectrum to support the high R̅ solar .d) Scattering strength of one optical scatterer (red line) and scatterer concentration (green line) as a function of the filling ratio (ϕ) of scatterers.

Figure 5 .
Figure 5. Porous structure.a) The geometry of a porous structure in simulation (scale bar = 2 μm).b) Simulated scattering efficiency and c) simulated reflectance spectra of pores with different diameters in P(VdF-HFP) matrix.d) Calculated R̅ solar and εLWIR with different porosity.e,f) Maximum e) R̅ solar and f) εLWIR for the porous P(VdF-HFP) model at different combinations of dual-scale pores with two different radii.g) Schematic of micro-nano dualscale pores.h) Structure diagram of porous PMMA coating.i) Transmission and reflection spectrums of porous PMMA films with different thickness.a-f)Reproduced with permission.[34]Copyright 2021, American Chemical Society.g) Reproduced with permission.[19c]Copyright 2021, Springer Nature.h,i) Reproduced with permission.[15c]Copyright 2018, Wiley-VCH.

Figure 6 .
Figure 6.Ultraviolet exposure.a) Surface color changes of thermoplastic polyurethane with UV aging.b) Photographs of PES film before and after UV exposure.c) SEM images of PES film before (left) and after the real-world exposure (right).d) Reflectance spectrum of porous PMMA films with the different accelerated weathering time.e) Florida's outdoor weathering site.f)The spectrum and appearance of superhydrophobic PDRC film after being placed outdoors for one month.g) Photos of superhydrophobic PDRC coating and commercial white paint coating after 6 months of real-world exposure.f) Comparison of optical and wetting properties before and after real-world exposure.a) Reproduced with permission.[39a]Copyright 2010, Elsevier.b,c) Reproduced with permission.[42]Copyright 2023, Wiley-VCH.d,e) Reproduced with permission.[19c]Copyright 2021, Springer Nature.f) Reproduced with permission.[22c]Copyright 2021, Royal Society of Chemistry.g,h) Reproduced with permission.[18c]Copyright 2022, Springer Nature.

Figure 7 .
Figure 7. a) Young's contact Angle and its relation to surface energy.b) Diagram of advancing angle, receding angle and sliding/roll-off angle.cf) Schematic of Wenzel's model and Cassie-Baxter's model respectively.g) Relationship between the apparent contact angle ( * ) and the liquid-solid contact fraction (f) for an ideal Cassie-Baxter state at different values of the static contact angle ( Y ).g) Reproduced with permission.Copyright 2014, AAAS.

Figure 8 .
Figure 8. Adhesion force between particles and different solid surfaces.a) Hydrophobic ( part = 10 mN m −1 ) and b) hydrophilic ( part = 100 mN m −1 ) particle on surfaces as functions of surface energy and particle diameter.

Figure 9 .
Figure 9. Dust removal of self-cleaning liquid repellent surfaces.a) Photograph of a water droplet cleaning a superhydrophobic surface covered by pollutants.b,c) Schematic illustration of the self-cleaning process of b) hydrophobic particle powders and c) hydrophilic particles (p < 2R) deposited from ethanol solution by a water drop on a superhydrophobic surface.d) Particles with a diameter smaller than the pore (p > 2R) can penetrate the surface micro-nano structure, affecting wetting performance.e) Schematic of a drop rolling over a nanoparticle-based superhydrophobic surface and microdroplets residue.f,g) Confocal images of the microdroplets residue on different superhydrophobic surfaces.h) Photograph of various liquid droplets on a superhydrophobic surface.i) Illustration of a solvent drop deposited a superamphiphobic surface.j) Water droplet was repelled by the TiO 2 nanoparticles-based superhydrophobic surface when immersed in oil (hexadecane).k) The dust on the superhydrophobic surface was cleaned by a water droplet in oil.l) Microscopic images showing the self-cleaning process by self-propelled jumping condensate.m) The process of soiling removal by condensate on superhydrophobic surface.n) Schematic showing the moisture-driven superhydrophobic self-cleaning.o) Qualitative images of dew harvesting on superhydrophobic surfaces under solar radiation.a-d) Reproduced with permission.[62a]Copyright 2020, AAAS.e-g) Reproduced with permission.[64]Copyright 2020.American Chemical Society.h) Reproduced with permission.Copyright 2021, American Chemical Society.i) Reproduced with permission.[67]Copyright 2012, AAAS.j,k) Reproduced with permission.[54c]Copyright 2015, AAAS.l) Reproduced with permission.[54d]Copyright 2013, m) Reproduced with permission.[70]Copyright 2021, Elsevier.n) Reproduced with permission.[62b]Copyright 2020, Springer Nature.o) Reproduced with permission.[71]Copyright 2021, AAAS.

Figure 10 .
Figure 10.Laboratory contamination characterization method for PDRC materials.a) Composition and proportion of outdoor soiling used to simulate the three-site average (Arizona, Ohio, and Florida).b) Schematic diagram of laboratory apparatus used for accelerated contamination.Adapted with permission.[44]Copyright 2014, Elsevier.

Figure 11 .
Figure 11.Schematic diagram of characterization methods for chemical corrosion.a) Corrosive droplet surface deposition method.b) Corrosive liquid immersion method.

Figure 12 .
Figure 12.Employing raw materials with stable chemical bonds -organic compound and polymer.a) Structure diagram and b) spectral refractive index of P(VdF-HFP).c) Schematic diagram of P(VdF-HFP)/SiO 2 film.d) Structure of P(VdF-HFP)/SiO 2 film.e) Schematic of porous PDMS film.f) Structure of perfluorooctyltrichlorosilane.g) TEM image showing the perfluorooctyltrichlorosilane grafted on the surface of TiO 2 particle.h) Schematic of porous PMMA film.i) Preparation of PTFE-based PDRC film.j) Structural colors based on natural components, such as cellulose, and lignin.k) Photo and SEM images of nano cellulose paper.l) Photo of the graded cellulose nanofibrils dispersions obtained by diluting to an equal concentration, showing the thinnest, medium, and coarsest fibrils from left to right.m) Photo of the compact cellulose nanofibril film (left) and 10 μm thick cellulose nanofibrils porous film (right) made from the coarsest fibrils.a,b) Reproduced with permission.[19a]Copyright 2018, AAAS.c,d) Reproduced with permission.[25a]Copyright 2022, Elsevier.e) Reproduced with permission.[88]Copyright 2022.f,g) Reproduced with permission.[18c]Copyright 2022, Springer Nature.h) Reproduced with permission.[19c]Copyright 2021, Springer Nature.i) Reproduced with permission.[86b]Copyright 2021, American Chemical Society.j) Reproduced with permission.[97b]Copyright 2021, Springer Nature.k) Reproduced with permission.[99]Copyright 2021, American Chemical Society.l,m) Reproduced with permission.[100]Copyright 2021, Wiley-VCH.

Figure 13 .
Figure 13.Employing raw materials with stable chemical bonds -inorganic compound.a) Schematic of natural silk and Al 2 O 3 nanoparticles-modified silk by enhancing UV reflectance.b) Spider silk-like natural silk and nanocomposite doped with K 2 Ti 6 O 13 designs and structures.c) Photographs of K 2 Ti 6 O 13 -doped PEO film and pure PEO film after 30 days of outdoor exposure.d) Schematic and e) SEM image of three-layer inorganic composite film.f) Schematic of the fabrication process of PES-TiO 2 -Al 2 O 3 film.g) Reflectance spectra of PES-TiO 2 -Al 2 O 3 film exposed to UV at different times.h) Appearance of the PES-TiO 2 -Al 2 O 3 film before and after UV exposure.a) Reproduced with permission.[102]Copyright 2021, Springer Nature.b,c) Reproduced with permission.[22b]Copyright 2022, Wiley-VCH.d,e) Reproduced with permission.[23]Copyright 2022, Wiley-VCH.f-h) Reproduced with permission.[42]Copyright 2023, Wiley-VCH.

Figure 14 .
Figure 14.Using raw materials with flame retardancy.a) Photo and thermal infrared image of SMF film burning in flame.b) Photos of SMF film and comparison samples before and after flame combustion.c) Schematic of the cooling lignocellulosic bulk composed of SiO 2 particles.d) The cooling lignocellulose bulk burned in a flame.e) Schematic of the manufacturing process of MF bulk.(f) The MF bulk shows excellent self-extinguishing performance.a,b) Reproduced with permission.[51]Copyright 2023, Elsevier.c,d) Reproduced with permission.[22b]Copyright 2022, Wiley-VCH.e,f) Reproduced with permission.[24]Copyright 2021, Elsevier.

Figure 16 .
Figure 16.Porous polymeric coating/film.a) Schematic diagram of phase-inversion-based method for fabricating P(VdF-HFP) HP coating.b) SEM images showing top and cross-section views of P(VdF-HFP) HP .c) Photograph showing a water droplet placed on the P(VdF-HFP) HP coating.d) SEM image showing the surface structure of the SRCP film.The inset shows the water contact angle.e) Self-cleaning process diagram of SRCP film.f,g) Temperature distribution of f) SRCP film and g) porous P(VdF-HFP) film under simulated sunlight before and after being polluted by mud.h) Schematic illustration of the fabrication of PMMA HPA with a hierarchically porous array.i) SEM images showing top views of PMMA HPA .j) Water contact angle variations of PMMA, PMMA MPA , PMMA NP , PMMA HPA films after surface modification.k) Schematic illustration of photopolymerization-induced phase separation method for fabricating the porous coating.l) Optical and m) SEM images of the poly (TMPTA-VTES) coating before (top) and after (down) UV and moisture exposure for 50 days.m) Photographs of the self-cleaning of the poly (TMPTA-VTES) coating.(n) Schematic illustration of the preparation of waste paper-based PDRC aerogel.o) Cross-sectional SEM image of superhydrophobic cellulose aerogel cooler.a-c) Reproduced with permission.[19a]Copyright 2018, AAAS.d-g) Reproduced with permission.[22c]Copyright 2021, Royal Society of Chemistry.h-j) Reproduced with permission.[19c]Copyright 2021, Springer Nature.k-m) Reproduced with permission.[25b]Copyright 2021, American Chemical Society.n,o) Reproduced with permission.[78]Copyright 2021, Elsevier.

Figure 17 .
Figure 17.Porous structural bulk.a) Schematic showing the wood structure strongly scattering sunlight.b) Performance comparison between cooling wood and natural wood.c) Photograph showing water droplets placed on the cooling wood.d) Schematic of the fabrication process of AFTPU film.e)Fabrication process and schematic of the formation of micro-nano structure of the SC-PLA aerogel.f) Water contact angles of the PLA aerogels under various conditions.g) Self-cleaning of the SC-PLA aerogel with 2 ml water (L-D-2).a-c) Reproduced with permission.[16a]Copyright 2019, AAAS.d) Reproduced with permission.[107]Copyright 2022, Wiley-VCH.e-g) Reproduced with permission.[17c]Copyright 2022, Wiley-VCH.

Figure 18 .
Figure 18.Pigments-assembled dual-scale structure.a) The scattering efficiency of a single TiO 2 spherical particle as a function of particle diameter in different scattering media.b,c) Anticipated solar reflectance and apparent contact angle as a function of packing density of nanoparticles and the corresponding schematic diagrams.d) SEM image showing the AACP coating surface.e) Effect of soiling on the cooling performance in the real world of AACP and commercial white paint coatings.f) Photograph of AACP coating resistant to mud pollution.g) Improvement of robustness of AACP coating by adding primer adhesive.h) Demonstration of large-scale spraying.i) Demonstration of AACP coating coated ceramic tiles.Reproduced with permission. [18c] Copyright 2022, Springer Nature.

Figure 19 .
Figure 19.Particles/pigments-combined porous structure.a) Schematic illustration of optical behaviors of three different structures.b) Scattering efficiency of BaSO 4 nanoparticles and micro-nano pores.c) Daytime net cooling power at different nonradiative heat exchange coefficients.d) Photographs of water droplets on the porous ethyl cellulose matrix−BaSO 4 nanoparticles coating surface.e) SEM image of the P(VdF-HFP)/SiO 2 film.The inset shows the water contact angle.f) Water droplets detach from the P(VdF-HFP)/SiO 2 film surface.g) Microstructure schematic diagram and preparation process of SiO 2 microspheres-polyvinylidene fluoride/tetraethyl orthosilicate fiber composite film.h,i) SEM images of the PVdF-HFP/SiO 2 films.The inset in part h) is the water contact angle image.j) Surface-wetting state and SEM image of microstructure of PTFE particles-coated cellulose fiber composite film.k) Self-cleaning process of PTFE particles-coated cellulose fiber composite film.a-d) Reproduced with permission.[107]Copyright 2022, American Chemical Society.e,f) Reproduced with permission.[25a]Copyright 2022, Elsevier.g-i) Reproduced with permission.[110]Copyright 2019, Wiley-VCH.j,k) Reproduced with permission.[79]Copyright 2022, American Chemical Society.

Figure 20 .
Figure 20.Surface-patterned structure.a-c) Photographs and SEM images of fluffs on the forewings of N. gigas.d) Schematic diagram of the fluffsinspired composite films with photonic architectures.e) Photograph of water droplets on the Bio-RC film.f) Water contact angle of Bio-RC film.g) Schematic of a hexagonal-array grating-patterned PDMS film.h) Top view and side view SEM images of hexagonal-array grating.i) Water contact angle of PDMS HGF and dust removal via droplet impacts on the surface.j) Schematic diagram of the HPNC film.k) Optical images and confocal laser microscope images of surface morphology of flat patternless nano PE film and surface-patterned nano PE film.l) Structure diagram and working principle diagram of JET.m) Schematic of the structure of TARC.n) Schematics of materials composition and optical transition mechanism of TARC.o) Fabrication process and structural color of the truncated microcone array.a-f) Reproduced with permission.[80b]Copyright 2020, g-i) Reproduced with permission.[111d]Copyright 2022, Elsevier.j,k) Reproduced with permission.[77]Copyright 2023, American Chemical Society.l) Reproduced with permission.[116]Copyright 2020, AAAS.m,n) Reproduced with permission.[117]Copyright 2021, AAAS.o) Reproduced with permission.[118]Copyright 2022, Wiley.

Figure 21 .
Figure 21.Multilayered PDRC films.a) Photograph of different solvent droplets on the superhydrophobic top layer.b) Photo of the superhydrophobic top layer resistant to dyed liquid.c) Chemical reactions during the preparation of the superhydrophobic top layer.d) Schematic diagram of polymer-based hybrid metamaterial with resonant polar dielectric microspheres.e) 3D confocal microscope image of hybrid metamaterial.f) Schematic of the anticontamination of multi-layer film.g) Photograph of the multi-layer film impacted with the water jets.h) Schematic of the PTFE layer with a hierarchical micropattern and ceramic porous bottom layer with surface phonon-polariton.i) Images of the bilayer film surface with different solvent droplets.j) Schematic of the structure of trilayer PES-TiO 2 -Al 2 O 3 film.k) Cross-sectional SEM image of the PES-TiO 2 -Al 2 O 3 film.l,m) SEM image of the top area l) and the bottom area m) of the PES-TiO 2 -Al 2 O 3 film.n) The * of the PES film and PES-TiO 2 -Al 2 O 3 film.o) Optical schematic diagram of bilayer colorful PDRC film.p) Schematic of superhydrophobic multi-layer colorful PDRC film.q) Optical schematic diagram of nanocrystals-ethylcellulose bilayer film.r) Optical micrographs of the blue, green, and red cellulose nanocrystals-ethylcellulose bilayer films and s) roll-to-roll process.a-c) Reproduced with permission.[35b]Copyright 2022, Elsevier.d,e) Reproduced with permission.[11g]Copyright 2017, AAAS.f,g) Reproduced with permission.[80a]Copyright 2021, Elsevier.h,i) Reproduced with permission.[52b]Copyright 2021, American Chemical Society.j-n) Reproduced with permission.[42]Copyright 2023, Wiley-VCH.o) Reproduced with permission.[119]Copyright 2020, AAAS.p) Reproduced with permission.[35a]Copyright 2021, Elsevier.q-s) Reproduced with permission.[15b]Copyright 2022, Wiley-VCH.

Table 1 .
Summary of common materials used to decrease the surface energy.

Table 2 .
Test standards for different anti-environmental aging properties of PDRC materials.

Table 3 .
Summary of optical data of raw materials for AEA-PDRC.

Table 4 .
Selected works showing excellent anti-environmental aging performance of PDRC materials.