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基于4-(氯甲基)苯甲腈添加剂的双电荷传输层协同钝化用于高效稳定的倒置钙钛矿太阳能电池

Collaborative Passivation for Dual Charge Transporting Layers Based on 4-(chloromethyl)benzonitrile Additive toward Efficient and Stable Inverted Perovskite Solar Cells.

作者信息

Li Xingyu, Li Songbo, Liu Weiting, Dong Pengpeng, Zheng Guoyuan, Peng Yong, Mo Shuyi, Tian Nan, Yao Disheng, Long Fei

机构信息

Guangxi Key Laboratory of Optical and Electronic Material and Devices, School of Materials Science and Engineering, Guilin University of Technology, 12 Jiangan Road, Guilin, Guangxi, 541004, P. R. China.

Collaborative Innovation Center for Exploration of Nonferrous Metal Deposits and Efficient Utilization of Resources, Guilin University of Technology, 12 Jiangan Road, Guilin, Guangxi, 541004, P. R. China.

出版信息

Small. 2023 May;19(20):e2207445. doi: 10.1002/smll.202207445. Epub 2023 Feb 25.

Abstract

Poor carrier transport capacity and numerous surface defects of charge transporting layers (CTLs), coupled with misalignment of energy levels between perovskites and CTLs, impact photoelectric conversion efficiency (PCE) of inverted perovskite solar cells (PSCs) profoundly. Herein, a collaborative passivation strategy is proposed based on 4-(chloromethyl) benzonitrile (CBN) as a solution additive for fabrication of both [6,6]-phenyl-C61-butyric acid methylester (PCBM) and poly(triarylamine) (PTAA) CTLs. This additive can improve wettability of PTAA and reduce the agglomeration of PCBM particles, which enhance the PCE and device stability of the PSCs. As a result, a PCE exceeding 20% with a remarkable short circuit current of 23.9 mA cm , and an improved fill factor of 81% is obtained for the CBN- modified inverted PSCs. Devices maintain 80% and 70% of the initial PCE after storage under 30% and 85% humidity ambient conditions for 1000 h without encapsulation, as well as negligible light state PCE loss. This strategy demonstrates feasibility of the additive engineering to improve interfacial contact between the CTLs and perovskites for fabrication of efficient and stable inverted PSCs.

摘要

电荷传输层(CTLs)的载流子传输能力差且存在大量表面缺陷,再加上钙钛矿与CTLs之间的能级失配,对倒置钙钛矿太阳能电池(PSC)的光电转换效率(PCE)产生了深远影响。在此,提出了一种协同钝化策略,该策略基于4-(氯甲基)苯甲腈(CBN)作为溶液添加剂,用于制备[6,6]-苯基-C61-丁酸甲酯(PCBM)和聚(三芳基胺)(PTAA)CTLs。这种添加剂可以提高PTAA的润湿性并减少PCBM颗粒的团聚,从而提高PSC的PCE和器件稳定性。结果,对于CBN改性的倒置PSC,获得了超过20%的PCE,短路电流显著达到23.9 mA cm ,填充因子提高到81%。在30%和85%湿度环境条件下无封装储存1000小时后,器件保持了初始PCE的80%和70%,并且光态下PCE损失可忽略不计。该策略证明了添加剂工程对于改善CTLs与钙钛矿之间的界面接触以制造高效稳定的倒置PSC的可行性。

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