Affiliation:
1. Zhejiang Provincial Key Laboratory of Advanced Chemical Engineering Manufacture Technology College of Chemical and Biochemical Engineering Zhejiang University Hangzhou 310027 China
2. Research department of technology center Zhejiang China Tobacco Industry Co., Ltd Hangzhou 310027 China
3. Special polymer research institute Quzhou Research Institute Zhejiang University Quzhou 324000 China
4. State Key Laboratory of Silicon Materials Key Laboratory for Biomedical Engineering of Ministry of Education School of Materials Science and Engineering Zhejiang University Hangzhou 310027 China
5. State Key Laboratory of Modern Optical Instrumentation College of Optical Science and Engineering International Research Center for Advanced Photonics Zhejiang University Hangzhou 310058 China
Abstract
AbstractIn recent years, growing concerns regarding energy efficiency and heat mitigation, along with the critical goal of carbon neutrality, have drawn human attention to the zero‐energy‐consumption cooling technique. Passive daytime radiative cooling (PDRC) can be an invaluable tool for combating climate change by dispersing ambient heat directly into outer space instead of just transferring it across the surface. Although significant progress has been made in cooling mechanisms, materials design, and application exploration, PDRC faces challenges regarding functionality, durability, and commercialization. Herein, a silica nanofiber aerogels (SNAs) functionalized poly(vinylidene fluoride‐co‐hexafluoropropene) (P(VDF‐HFP)) membrane (SFP membrane), inspired by constructional engineering is constructed. As‐prepared membranes with flexible network structure combined hierarchical structure design and practicability principal. As the host material for thermal comfort management (TCM) and versatile protection, the SFP membrane features a large surface area, porous structure, and a robust skeleton that can render excellent mechanical properties. Importantly, the SFP membrane can keep exceptional solar reflectivity (0.95) and strong mid‐infrared emittance (0.98) drop the temperature to 12.5 °C below ambient and 96 W m−2 cooling power under typical solar intensities over 910 W m−2. This work provides a promising avenue for high performance aerogel membranes that can be created for use in a wide variety of applications.
Funder
National Natural Science Foundation of China
Subject
Biomaterials,Biotechnology,General Materials Science,General Chemistry
Cited by
20 articles.
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