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通过螯合作用降低钙钛矿太阳能电池中的能量无序度

Reducing Energy Disorder in Perovskite Solar Cells by Chelation.

作者信息

Jiang Yiting, Wang Jiabin, Zai Huachao, Ni Dongyuan, Wang Jiayu, Xue Peiyao, Li Nengxu, Jia Boyu, Lu Huanjun, Zhang Yu, Wang Feng, Guo Zhenyu, Bi Zhaozhao, Xie Haipeng, Wang Qian, Ma Wei, Tu Yingfeng, Zhou Huanping, Zhan Xiaowei

机构信息

Key Laboratory of Polymer Chemistry and Physics of Ministry of Education, School of Materials Science and Engineering, Peking University, Beijing 100871, China.

State and Local Joint Engineering Laboratory for Novel Functional Polymeric Materials, College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, China.

出版信息

J Am Chem Soc. 2022 Mar 30;144(12):5400-5410. doi: 10.1021/jacs.1c12732. Epub 2022 Mar 20.

Abstract

In inverted perovskite solar cells (PSCs), the fullerene derivative [6,6]-phenyl-C-butyric acid methyl ester (PCBM) is a widely used electron transport material. However, a high degree of energy disorder and inadequate passivation of PCBM limit the efficiency of devices, and severe self-aggregation and unstable morphology limit the lifespan of devices. Here, we design a series of fullerene dyads FP-C ( = 4, 8, 12) to replace PCBM as an electron transport layer, where [60]fullerene is linked with a terpyridine chelating group via a flexible alkyl chain of different lengths as a spacer. Among three fullerene dyads, FP-C8 shows the most enhanced molecule ordering and adhesion with the perovskite surface due to the balanced decoupling between the chelation effect from terpyridine and the self-assembly of fullerene, leading to lower energy disorder and higher morphological stability relative to PCBM. The FP-C8/C60-based devices using CsFAMAPbIBr as a light absorber show a power conversion efficiency of 21.69%, higher than that of PCBM/C60 (20.09%), benefiting from improved electron extraction and transport as well as reduced charge recombination loss. When employing FAPbI as a light absorber, the FP-C8/C60-based devices exhibit an efficiency of 23.08%, which is the champion value of inverted PSCs with solution-processed fullerene derivatives. Moreover, the FP-C8/C60-based devices show better moisture and thermal stability than PCBM/C60-based devices and maintain 96% of their original efficiency after 1200 h of operation, while their counterpart PCBM/C60 maintains 60% after 670 h.

摘要

在倒置钙钛矿太阳能电池(PSC)中,富勒烯衍生物[6,6]-苯基-C-丁酸甲酯(PCBM)是一种广泛使用的电子传输材料。然而,PCBM的高度能量无序和钝化不足限制了器件的效率,严重的自聚集和不稳定的形态限制了器件的寿命。在此,我们设计了一系列富勒烯二元化合物FP-C( = 4, 8, 12)来替代PCBM作为电子传输层,其中[60]富勒烯通过不同长度的柔性烷基链作为间隔基与三联吡啶螯合基团相连。在三种富勒烯二元化合物中,FP-C8由于三联吡啶的螯合效应与富勒烯的自组装之间的平衡解耦,表现出最强的分子有序性和与钙钛矿表面的附着力,相对于PCBM导致更低的能量无序和更高的形态稳定性。以CsFAMAPbIBr作为光吸收剂的基于FP-C8/C60的器件显示出21.69%的功率转换效率,高于PCBM/C60(20.09%),这得益于改善的电子提取和传输以及减少的电荷复合损失。当使用FAPbI作为光吸收剂时,基于FP-C8/C60的器件表现出23.08%的效率,这是采用溶液处理富勒烯衍生物的倒置PSC的最佳值。此外,基于FP-C8/C60的器件比基于PCBM/C60的器件表现出更好的防潮和热稳定性,在运行1200小时后保持其原始效率的96%,而其对应的PCBM/C60在670小时后保持60%。

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