钙钛矿(结构)
串联
材料科学
硒化铜铟镓太阳电池
制作
光伏系统
能量转换效率
光电子学
混合太阳能电池
带隙
量子点太阳电池
晶体硅
硅
太阳能电池
钙钛矿太阳能电池
纳米技术
极限(数学)
聚合物太阳能电池
化学
电气工程
复合材料
病理
替代医学
工程类
医学
结晶学
作者
Ziyu Wang,Zhaoning Song,Yanfa Yan,Shengzhong Liu,Dong Yang
标识
DOI:10.1002/advs.201801704
摘要
Up to now, multijunction cell design is the only successful way demonstrated to overcome the Shockley-Quiesser limit for single solar cells. Perovskite materials have been attracting ever-increasing attention owing to their large absorption coefficient, tunable bandgap, low cost, and easy fabrication process. With their rapidly increased power conversion efficiency, organic-inorganic metal halide perovskite-based solar cells have demonstrated themselves as the most promising candidates for next-generation photovoltaic applications. In fact, it is a dream come true for researchers to finally find a perfect top-cell candidate in tandem device design in commercially developed solar cells like single-crystalline silicon and CIGS cells used as the bottom component cells. Here, the recent progress of multijunction solar cells is reviewed, including perovskite/silicon, perovskite/CIGS, perovskite/perovskite, and perovskite/polymer multijunction cells. In addition, some perspectives on using these solar cells in emerging markets such as in portable devices, Internet of Things, etc., as well as an outlook for perovskite-based multijunction solar cells are discussed.
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