Liu Hongtao, Wang Yining, Sun Wei, Chen Mingshuo, Chen Zhuan, Hou Yongping, Zheng Yongmei, Yu Bin
School of Transportation Science and Engineering, Beihang University (BUAA), Beijing, 100191, P. R. China.
Key Laboratory of Bioinspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University (BUAA), Beijing, 100191, P. R. China.
Small. 2025 Aug;21(34):e2505210. doi: 10.1002/smll.202505210. Epub 2025 Jun 25.
The development of scalable high-quality radiative cooling materials can effectively address overheating issues without energy consumption. While some progress has been made, significant challenges remain in a narrow application range, low cooling power, and poor mechanical properties, which fail to meet requirements for sustainable use. Here, inspired by the special structure of white moth wings and spider silk, a flexible, strong, and tough high-efficiency radiation cooling metafabric (STRCM) is demonstrated with a unique fiber microstructure (including anisotropy and core-shell structure). The metafabric exhibits remarkable mechanical characteristics, boasting an effective tensile strength of 2.55 MPa, and exceptional toughness with an elongation at break of 726.94% and an impact energy absorption of 31 MJ m. More importantly, the metafabric demonstrates excellent radiative cooling with a temperature drop of ≈6.7 °C and an average cooling power of 79.0 W m under a peak solar intensity of ≈978 W m (tested in Beijing, China). During a long-term intermittent testing period, the cooling effect of the material shows no noticeable decline. The multi-level structural design of this work provides an unprecedented strategy for simultaneously enhancing mechanical properties and radiative cooling for long-term applications.
可扩展的高质量辐射冷却材料的开发可以有效解决过热问题而无需消耗能源。虽然已经取得了一些进展,但在狭窄的应用范围、低冷却功率和较差的机械性能方面仍存在重大挑战,无法满足可持续使用的要求。在此,受白蛾翅膀和蜘蛛丝特殊结构的启发,展示了一种具有独特纤维微观结构(包括各向异性和核壳结构)的柔性、坚固且坚韧的高效辐射冷却超织物(STRCM)。该超织物具有显著的机械特性,有效拉伸强度为2.55兆帕,具有出色的韧性,断裂伸长率为726.94%,冲击能量吸收为31兆焦/平方米。更重要的是,在约978瓦/平方米的峰值太阳强度下(在中国北京测试),该超织物表现出出色的辐射冷却性能,温度下降约6.7°C,平均冷却功率为79.0瓦/平方米。在长期间歇性测试期间,材料的冷却效果没有明显下降。这项工作的多级结构设计为长期应用中同时提高机械性能和辐射冷却提供了前所未有的策略。