能量学
堆栈(抽象数据类型)
异质结
钙钛矿(结构)
双层
材料科学
偶极子
纳米技术
光电子学
太阳能电池
电子
光伏系统
整改
工作(物理)
化学物理
沉积(地质)
单层
离子
矩形势垒
卤化物
作者
Shaobing Xiong,Xiaoxiao Zang,Chaochao Wang,Xuelin Wang,Zaifei Ma,Lixuan Kan,Mengyao Song,Jinxiang Wang,Yang Qu,Zhennan Lin,Di Li,Bin Zhao,Sheng Jiang,Yunzhe Zheng,Yu‐Ning Wu,Shuang Yang,Yongbo Yuan,Bo Li,Meifang Zhu,Qinye Bao
标识
DOI:10.1021/acsenergylett.5c02219
摘要
Energetics mismatch at the 3D/2D heterojunction is one important source for nonradiative recombination in 3D/2D heterojunction perovskite solar cells (PSCs). Herein, we successfully tailor the energetics of bilayer stack 3D/2D heterojunctions via different interfacial dipoles employing a series of molecular interlayers and explore the impacts of energetics and conduction band minimum energy offsets at 3D/2D heterojunctions on electron extraction efficacy and operational stability for p-i-n PSCs. We reveal that the negative dipole efficiently eliminates the energetics mismatch at the 3D/2D heterojunction and accelerates the electron transport across the heterojunction. Furthermore, the improved energetics at the 3D/2D heterojunction inhibits halide ion migration, significantly improving the device long-term stability. As a result, we achieve an impressive and robust efficiency over 25%, among the highest performance reported to date for 3D/2D bilayer stack PSCs using direct deposition of 2D perovskite. This work offers a promising strategy of energetics management to push 3D/2D heterojunction PSC technology forward.
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