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Efficient radiative cooling coating with biomimetic human skin wrinkle structure

Cheng, Ziming; Han, Han; Wang, Fuqiang; Yan, Yuying; Shi, Xuhang; Liang, Huaxu; Zhang, Xinping; Shuai, Yong

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Authors

Ziming Cheng

Han Han

Fuqiang Wang

YUYING YAN YUYING.YAN@NOTTINGHAM.AC.UK
Professor of Thermofluids Engineering

Xuhang Shi

Huaxu Liang

Xinping Zhang

Yong Shuai



Abstract

Daytime radiative cooling is an energy-free pathway to achieve cooling performance. Current radiative cooling materials with periodic photonic structures are facing a huge challenge in terms of scale expansion owing to complex preparation technology and high cost. Herein, we proposed the idea of using biomimetic wrinkle structure combined with optimized particles to achieve the efficient optical property regulation of both the solar band and “atmospheric window” band. On this basis, a large-scale radiative cooling coating with the biomimetic structure of human skin natural wrinkle, comprising high concentrations of BaSO4 and SiO2 particles, was demonstrated. The coating with a thickness of ~100 µm reflected ~95% of solar irradiance, and the emissivity in the “atmospheric window” band was ~96%. At noontime (11:00–13:00), in a populous area located at sea level, the average effective cooling power of ~89.6 W/m2 was recorded, and the maximum sub-ambient temperature drop can reach 8.1 °C. An outdoor-building test conducted over a year showed that the maximum average indoor air temperature of the building painted with the coating was reduced by 6.2 °C and the maximum power-saving rate of air-conditioning exceeded 50%. Our work provided a new idea for designing, fabrication, and application of high-performance radiative cooling materials.

Citation

Cheng, Z., Han, H., Wang, F., Yan, Y., Shi, X., Liang, H., …Shuai, Y. (2021). Efficient radiative cooling coating with biomimetic human skin wrinkle structure. Nano Energy, 89, Part A, Article 106377. https://doi.org/10.1016/j.nanoen.2021.106377

Journal Article Type Article
Acceptance Date Jul 25, 2021
Online Publication Date Jul 30, 2021
Publication Date 2021-11
Deposit Date Aug 6, 2021
Publicly Available Date Jul 31, 2022
Journal Nano Energy
Print ISSN 2211-2855
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 89, Part A
Article Number 106377
DOI https://doi.org/10.1016/j.nanoen.2021.106377
Keywords Electrical and Electronic Engineering; General Materials Science; Renewable Energy, Sustainability and the Environment
Public URL https://nottingham-repository.worktribe.com/output/5957133
Publisher URL https://www.sciencedirect.com/science/article/pii/S2211285521006327

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