钙钛矿(结构)
电子束物理气相沉积
材料科学
物理气相沉积
制作
原子层沉积
化学气相沉积
沉积(地质)
能量转换效率
钙钛矿太阳能电池
溅射沉积
太阳能电池
真空沉积
离子镀
脉冲激光沉积
串联
纳米技术
薄膜
光电子学
化学工程
溅射
复合材料
工程类
沉积物
医学
替代医学
古生物学
病理
生物
作者
Hang Li,Mingzhen Liu,Meicheng Li,Hyesung Park,Nripan Mathews,Yabing Qi,Xiaodan Zhang,Henk J. Bolink,Karl Leo,Michael Gräetzel,Chenyi Yi
标识
DOI:10.23919/ien.2022.0053
摘要
Metal halide perovskite solar cells (PSCs) have made substantial progress in power conversion efficiency (PCE) and stability in the past decade thanks to the advancements in perovskite deposition methodology, charge transport layer (CTL) optimization, and encapsulation technology. Solution-based methods have been intensively investigated and a 25.7% certified efficiency has been achieved. Vacuum vapor deposition protocols were less studied, but have nevertheless received increasing attention from industry and academia due to the great potential for large-area module fabrication, facile integration with tandem solar cell architectures, and compatibility with industrial manufacturing approaches. In this article, we systematically discuss the applications of several promising vacuum vapor deposition techniques, namely thermal evaporation, chemical vapor deposition (CVD), atomic layer deposition (ALD), magnetron sputtering, pulsed laser deposition (PLD), and electron beam evaporation (e-beam evaporation) in the fabrication of CTLs, perovskite absorbers, encapsulants, and connection layers for monolithic tandem solar cells.
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