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Self-Cleaning and Anticorrosive Silica Microsphere@Boron Nitride Nanosheets Core-Shell Hierarchical Structure for Highly Efficient Passive Radiative Cooling.

作者信息

Zhang Beiyi, Bao Yao, Lin Yibing, Chen Jing, Sun Jingwen, Wang Jilin, Yu Yuanlie

机构信息

Shandong Laboratory of Advanced Materials and Green Manufacturing at Yantai, Yantai, 264000, P. R. China.

Guangxi Key Laboratory of Optical and Electronic Materials and Devices, Collaborative Innovation Center for Exploration of Nonferrous Metal Deposits and Efficient Utilization of Resources, School of Materials Science and Engineering, Guilin University of Technology, Guilin, 541004, P. R. China.

出版信息

Small. 2024 Dec 5:e2409611. doi: 10.1002/smll.202409611.

DOI:10.1002/smll.202409611
PMID:39639182
Abstract

Passive radiative cooling is a promising technology that can achieve high-efficient cooling by reflecting solar radiation while simultaneously emitting heat without consuming energy. However, to precisely construct the microstructure of the materials is crucial to maximize their performance. Herein, a self-cleaning and anticorrosive 3D silica microsphere@boron nitride nanosheets core-shell hierarchical structure (SiO@BNNSs) stacked coating is fabricated on the surface of aluminum oxide substrate. The cooperative integration of prominently sunlight reflective BNNSs and highly selective infrared emissive SiO microspheres, combined with sunlight scattering brought by the 3D interconnecting configuration, results in an outstanding solar radiation reflectance of 0.84 and a mid-infrared emittance of 0.82 for the SiO@BNNS coating. These features enable the SiO@BNNS coating to exhibit excellent passive radiative cooling performances with high temperature drop of ≈17.5 °C on sunny day and ≈8.1 °C on overcast day, respectively. More importantly, the SiO@BNNS coating also exhibits self-cleaning performance and corrosion resistance in both acidic and alkaline conditions, ensuring the preeminent stability over a long time for various practical applications. This work demonstrates that the hybridization of the high reflection, scattering, and emittance of different materials through reasonable structure design can achieve high-efficient passive radiative cooling, offering promising prospect for energy-saving cooling technology.

摘要

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