Xu Jianing, Xie Wei, Han Hexiang, Xiao Chengyu, Li Jing, Zhang Yifan, Chen Shaowen, Zhao Binyuan, Zhang Di, Zhou Han
State Key Lab of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai, 200240, People's Republic of China.
Future Materials Innovation Center, Zhangjiang Institute for Advanced Study, Shanghai Jiao Tong University, Shanghai, 201203, People's Republic of China.
Nanomicro Lett. 2025 Jul 7;17(1):324. doi: 10.1007/s40820-025-01835-9.
Radiative cooling is a passive thermal management strategy that leverages the natural ability of materials to dissipate heat through infrared radiation. It has significant implications for energy efficiency, climate adaptation, and sustainable technology development, with applications in personal thermal management, building temperature regulation, and aerospace engineering. However, radiative cooling performance is susceptible to environmental aging and special environmental conditions, limiting its applicability in extreme environments. Herein, a critical review of extreme environmental radiative cooling is presented, focusing on enhancing environmental durability and cooling efficiency. This review first introduces the design principles of heat exchange channels, which are tailored based on the thermal flow equilibrium to optimize radiative cooling capacity in various extreme environments. Subsequently, recent advancements in radiative cooling materials and micro-nano structures that align with these principles are systematically discussed, with a focus on their implementation in terrestrial dwelling environments, terrestrial extreme environments, aeronautical environments, and space environments. Moreover, this review evaluates the cooling effects and anti-environmental abilities of extreme radiative cooling devices. Lastly, key challenges hindering the development of radiative cooling devices for extreme environmental applications are outlined, and potential strategies to overcome these limitations are proposed, aiming to prompt their future commercialization.
辐射冷却一种被动热管理策略,它利用材料通过红外辐射散热的自然能力。它对能源效率、气候适应和可持续技术发展具有重要意义,在个人热管理、建筑温度调节和航空航天工程中都有应用。然而,辐射冷却性能易受环境老化和特殊环境条件的影响,限制了其在极端环境中的适用性。在此,对极端环境辐射冷却进行了批判性综述,重点是提高环境耐久性和冷却效率。本综述首先介绍了热交换通道的设计原理,这些原理是根据热流平衡进行定制的,以优化各种极端环境下的辐射冷却能力。随后,系统地讨论了与这些原理相符的辐射冷却材料和微纳结构的最新进展,重点是它们在陆地居住环境、陆地极端环境、航空环境和空间环境中的应用。此外,本综述评估了极端辐射冷却装置的冷却效果和抗环境能力。最后,概述了阻碍极端环境应用辐射冷却装置发展的关键挑战,并提出了克服这些限制的潜在策略,旨在推动其未来商业化。