材料科学
接受者
有机太阳能电池
光伏系统
三元运算
能量转换效率
短路
带隙
光电子学
合金
开路电压
激子
太阳能电池
电压
聚合物
电气工程
凝聚态物理
计算机科学
复合材料
物理
程序设计语言
工程类
作者
Feng Liu,Liang Zhou,Wenrui Liu,Zichun Zhou,Qihui Yue,Wenyu Zheng,Ri Sun,Wuyue Liu,Shengjie Xu,Haijun Fan,Liheng Feng,Yuanping Yi,Wenkai Zhang,Xiaozhang Zhu
标识
DOI:10.1002/adma.202100830
摘要
Abstract The trade‐off between the open‐circuit voltage ( V oc ) and short‐circuit current density ( J sc ) has become the core of current organic photovoltaic research, and realizing the minimum energy offsets that can guarantee effective charge generation is strongly desired for high‐performance systems. Herein, a high‐performance ternary solar cell with a power conversion efficiency of over 18% using a large‐bandgap polymer donor, PM6, and a small‐bandgap alloy acceptor containing two structurally similar nonfullerene acceptors (Y6 and AQx‐3) is reported. This system can take full advantage of solar irradiation and forms a favorable morphology. By varying the ratio of the two acceptors, delicate regulation of the energy levels of the alloy acceptor is achieved, thereby affecting the charge dynamics in the devices. The optimal ternary device exhibits more efficient hole transfer and exciton separation than the PM6:AQx‐3‐based system and reduced energy loss compared with the PM6:Y6‐based system, contributing to better performance. Such a “two‐in‐one” alloy strategy, which synergizes two highly compatible acceptors, provides a promising path for boosting the photovoltaic performance of devices.
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