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用于被动热管理以实现可持续碳中和的辐射冷却

Radiative cooling for passive thermal management towards sustainable carbon neutrality.

作者信息

Liang Jun, Wu Jiawei, Guo Jun, Li Huagen, Zhou Xianjun, Liang Sheng, Qiu Cheng-Wei, Tao Guangming

机构信息

Wuhan National Laboratory for Optoelectronics and Optics Valley Laboratory, Huazhong University of Science and Technology, Wuhan 430074, China.

Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117583, Singapore.

出版信息

Natl Sci Rev. 2022 Sep 30;10(1):nwac208. doi: 10.1093/nsr/nwac208. eCollection 2023 Jan.

Abstract

Photonic structures at the wavelength scale offer innovative energy solutions for a wide range of applications, from high-efficiency photovoltaics to passive cooling, thus reshaping the global energy landscape. Radiative cooling based on structural and material design presents new opportunities for sustainable carbon neutrality as a zero-energy, ecologically friendly cooling strategy. In this review, in addition to introducing the fundamentals of the basic theory of radiative cooling technology, typical radiative cooling materials alongside their cooling effects over recent years are summarized and the current research status of radiative cooling materials is outlined and discussed. Furthermore, technical challenges and potential advancements for radiative cooling are forecast with an outline of future application scenarios and development trends. In the future, radiative cooling is expected to make a significant contribution to global energy saving and emission reduction.

摘要

波长尺度的光子结构为从高效光伏到被动冷却等广泛应用提供了创新的能源解决方案,从而重塑全球能源格局。基于结构和材料设计的辐射冷却作为一种零能耗、生态友好的冷却策略,为可持续碳中和带来了新机遇。在本综述中,除了介绍辐射冷却技术基本理论的基础外,还总结了近年来典型的辐射冷却材料及其冷却效果,并概述和讨论了辐射冷却材料的当前研究现状。此外,对辐射冷却的技术挑战和潜在进展进行了预测,并概述了未来的应用场景和发展趋势。未来,辐射冷却有望为全球节能减排做出重大贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b65/9843130/2e41d0a25940/nwac208fig1.jpg

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