材料科学
光电子学
透明度(行为)
透射率
光伏
紫外线
照度
钙钛矿(结构)
光伏系统
光学
计算机科学
化学工程
电气工程
物理
计算机安全
工程类
作者
Tianran Liu,Xiaoming Zhao,Ping Wang,Quinn Burlingame,Junnan Hu,Kwangdong Roh,Zhaojian Xu,Barry P. Rand,Minjie Chen,Yueh‐Lin Loo
标识
DOI:10.1002/aenm.202200402
摘要
Abstract Transparent photovoltaics (TPVs) can be integrated into the surfaces of buildings and vehicles to provide point‐of‐use power without impacting aesthetics. Unlike TPVs that target the photon‐rich near‐infrared portion of the solar spectrum, TPVs that harvest ultraviolet (UV) photons can have significantly higher transparency and color neutrality, offering a superior solution for low‐power electronics with stringent aesthetic tolerance. In addition to being highly transparent and colorless, an ideal UV‐absorbing TPV should also be operationally stable and scalable over large areas while still outputting sufficient power for its specified application. None of today's TPVs meet all these criteria simultaneously. Here, the first UV‐absorbing TPV is demonstrated that satisfies all four criteria by using CsPbCl 2.5 Br 0.5 as the absorber. By precisely tuning the halide ratio during thermal co‐evaporation, high‐quality large‐area perovskite films can be accessed with an ideal absorption cutoff for aesthetic performance. The resulting TPVs exhibit a record average visible transmittance of 84.6% and a color rendering index of 96.5, while maintaining an output power density of 11 W m −2 under one‐sun illumination. Further, the large‐area prototypes up to 25 cm 2 are demonstrated, that are operationally stable with extrapolated lifetimes of >20 yrs under outdoor conditions.
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