Liu Sai, Du Yuwei, Zhang Rui, He Huanfeng, Pan Aiqiang, Ho Tsz Chung, Zhu Yihao, Li Yang, Yip Hin-Lap, Jen Alex K Y, Tso Chi Yan
School of Energy and Environment, City University of Hong Kong, Tat Chee Avenue Kowloon Tong, Hong Kong, HKG, China.
State Key Laboratory of Fluid Power and Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou, 310058, China.
Adv Mater. 2024 Apr;36(17):e2306423. doi: 10.1002/adma.202306423. Epub 2023 Nov 8.
Uncontrolled sunlight entering through windows contributes to substantial heating and cooling demands in buildings, which leads to high energy consumption from the buildings. Recently, perovskite smart windows have emerged as innovative energy-saving technologies, offering the potential to adaptively control indoor solar heat gain through their impressive sunlight modulation capabilities. Moreover, harnessing the high-efficiency photovoltaic properties of perovskite materials, these windows have the potential to generate power, thereby realizing more advanced windows with combined light modulation and energy harvesting capabilities. This review summarizes the recent advancements in various chromic perovskite materials for achieving light modulation, focusing on both perovskite structures and underlying switching mechanisms. The discussion also encompasses device engineering strategies for smart windows, including the improvement of their optical and transition performance, durability, combination with electricity generation, and the evaluation of their energy-saving performance in building applications. Furthermore, the challenges and opportunities associated with perovskite smart windows are explicated, aimed at stimulating more academic research and advancing their pragmatic implementation for building energy efficiency and sustainability.
通过窗户进入室内的不受控制的阳光会导致建筑物产生大量的供暖和制冷需求,进而导致建筑物的能源消耗很高。最近,钙钛矿智能窗作为创新的节能技术出现了,凭借其令人印象深刻的阳光调制能力,具有自适应控制室内太阳得热的潜力。此外,利用钙钛矿材料的高效光伏特性,这些窗户有发电的潜力,从而实现具有光调制和能量收集组合能力的更先进窗户。本文综述了各种用于实现光调制的变色钙钛矿材料的最新进展,重点关注钙钛矿结构和潜在的开关机制。讨论还包括智能窗的器件工程策略,包括改善其光学和转换性能、耐久性、与发电的结合以及在建筑应用中的节能性能评估。此外,还阐述了与钙钛矿智能窗相关的挑战和机遇,旨在激发更多的学术研究,并推动其在建筑能源效率和可持续性方面的实际应用。