材料科学
钙钛矿(结构)
钝化
光电子学
面(心理学)
兴奋剂
能量转换效率
图层(电子)
阴极
纳米晶
光伏系统
异质结
纳米技术
光伏
阳极
金属
化学工程
电子
电子迁移率
电极
工作职能
工作(物理)
作者
Yishun Feng,Shucheng Qin,Y. John Wang,Minchao Liu,Yue Zhang,Ruihan Wu,Yao Zhao,Lei Meng,Yongfang Li
摘要
ABSTRACT Perovskite solar cells (pero‐SCs) with inverted ( p–i–n ) architecture have advanced rapidly, yet combining high efficiency with long‐term operational stability remains challenging, mainly due to commonly used organic cathode buffer layer (CBL) (between C 60 electron transporting layer and metal cathode) such as bathocuproine (BCP) with photo‐thermal instability. Here, Ga‐doped SnO 2 (Ga:SnO 2 ) is introduced as an inorganic CBL to replace BCP. Mechanistically, Ga incorporation promotes the preferential growth of the (110) facet of SnO 2 nanoparticles, which markedly enhances electrical conductivity and electron mobility of the CBL. It further suppresses non‐radiative recombination by passivating surface defects and reducing the interfacial trap density. The improved energy‐level alignment at the interface facilitates efficient electron extraction. These synergistic effects—validated by a suite of characterizations—enable inverted pero‐SCs with a champion power conversion efficiency of 27.06% (certified 26.77%) and robust stability, retaining 88% of initial efficiency after 1500 h of operation at 85°C. This work demonstrates a viable and scalable pathway to high‐performance and long‐term stable pero‐SCs.
科研通智能强力驱动
Strongly Powered by AbleSci AI