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用于全天候能量收集的仿生超薄膜:自适应热调节与雨滴发电

Bioinspired metafilms for all-weather energy harvesting: Adaptive thermal regulation and raindrop electricity generation.

作者信息

Chen Siru, Lin Kaixin, Liu Sai, Kwok Chui Ting, Liang Lin, Li Ze, Wu Shuangdui, Liu Ziai, Wang Chuyao, Pan Aiqiang, Chen Jianheng, Ho Tsz Chung, Chopra Shauhrat S, Zhu Yihao, Sun Qingping, Li Wei, Lin Borong, Tso Chi Yan

机构信息

School of Energy and Environment, City University of Hong Kong, Kowloon, Hong Kong, China.

Department of Building Science, School of Architecture, Tsinghua University, Beijing, China.

出版信息

Sci Adv. 2025 May 23;11(21):eadu2895. doi: 10.1126/sciadv.adu2895.

Abstract

Tremendous efforts have been dedicated to facilitating heat dissipation into cold universe through radiative cooling. Nevertheless, its applications remain limited by overcooling in cold conditions and reduced effectiveness under nonclear skies. We present a robust metafilm inspired by the adaptive capabilities of horned lizards () to overcome these challenges. This design extends energy harvesting to rainy conditions while maintaining thermal regulation on clear days. The metafilm features a sandwich structure with fluorinated ethylene propylene/indium tin oxide outer layers for raindrop-induced electricity generation and thermochromic core layers for self-regulated heating and cooling. It achieves an optical contrast exceeding 63% in the visible spectrum, enabling sub-ambient cooling in hot conditions and above-ambient heating when cold. In addition, it demonstrates efficient droplet-induced electricity generation, delivering a high-voltage output of 208 volts with exceptional long-term stability. This multifunctional metafilm overcomes key limitations of traditional radiative coolers, offering a versatile approach for all-weather energy harvesting.

摘要

人们付出了巨大努力,致力于通过辐射冷却将热量散发到寒冷的宇宙中。然而,其应用仍然受到寒冷条件下过冷以及非晴朗天空下效率降低的限制。我们提出了一种受角蜥()适应能力启发的坚固超薄膜,以克服这些挑战。这种设计将能量收集扩展到雨天条件,同时在晴天维持热调节。该超薄膜具有夹心结构,外层为氟化乙丙烯/氧化铟锡,用于雨滴发电,核心层为热致变色材料,用于自我调节加热和冷却。它在可见光谱中实现了超过63%的光学对比度,在炎热条件下实现低于环境温度的冷却,在寒冷时实现高于环境温度的加热。此外,它还展示了高效的液滴发电能力,能产生208伏的高电压输出,且具有出色的长期稳定性。这种多功能超薄膜克服了传统辐射冷却器的关键局限性,为全天候能量收集提供了一种通用方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab0f/12101490/de90e9cc64f8/sciadv.adu2895-f1.jpg

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