电子设备和系统的热管理
辐射传输
热辐射
温室气体
热的
经济短缺
能源消耗
辐射冷却
节能
辐射热
热发射
高效能源利用
能源管理
全球变暖
热能
计算机科学
系统工程
可持续发展
热舒适性
能量守恒
辐射能
持续性
气候变化
环境科学
风险分析(工程)
可持续能源
能量转换
能量(信号处理)
土地利用
作者
Ziyuan Han,Chengcong Li,Yuhang Lu,Zhongshao Li,Duo Pan,Xun Cao
标识
DOI:10.1016/j.mattod.2025.12.026
摘要
In recent decades, the rapid development of human civilization has intensified global energy consumption and greenhouse gas emissions, leading to two major crises: global energy shortages and climate deterioration. As the frequency of extreme weather events increases, reliance on traditional thermal management systems has grown, making these systems highly energy-intensive. Consequently, new thermal management technologies that conserve energy and reduce emissions have become a central focus of energy research. Compared to conventional thermal management methods, radiative thermal management (RTM) technology—which utilizes materials with high radiative optical properties to achieve low- or zero-energy thermal management—has been proposed as a sustainable alternative. Currently, static RTM technology is more mature and widely applied, contributing significantly to energy conservation and emission reduction. However, static RTM cannot provide effective thermal management throughout the entire day or year. Therefore, dynamic RTM technology, which incorporates radiation regulation functions, has emerged as the most promising solution, with substantial research progress achieved. This review first explains the fundamental principles of RTM, then provides a comprehensive overview of switching mechanisms, primary materials, design principles, application areas, and device designs for both static and dynamic RTM. Additionally, by comparing different types of RTM materials, this review summarizes their advantages and disadvantages, offering researchers a clearer understanding of current challenges and future development directions in RTM materials.
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