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多功能化学锚定剂提高了高稳定性钙钛矿太阳能电池的填充因子并减轻了离子迁移。

Multifunctional chemical anchors achieve a boosted fill factor and mitigate ion migration of high-stability perovskite solar cells.

作者信息

Han Jun, Luo Dandan, Huang Wei, Wang Fei, Jia Chong, Li Xinhua, Chen Yiqing

机构信息

School of Materials Science and Engineering, Hefei University of Technology, Hefei, 230009, China.

School of Physics, Hefei University of Technology, Hefei, 230061, China.

出版信息

Dalton Trans. 2024 May 14;53(19):8356-8368. doi: 10.1039/d4dt00076e.

Abstract

To date, it is urgent to produce perovskite films with comparative or even better morphologies in an open-air environment. Unfortunately, a substantial number of trap states on the grain surface, especially the grain boundaries (GBs) of a perovskite layer, can bring about significant deterioration in the performance of PSCs. Trap-induced carrier recombination directly exerts a detrimental influence on the carrier collection efficiency and electronic properties of a perovskite active film. Herein, 4(5)-iodoimidazole (4II), a small organic molecule agent, was introduced to passivate the surface and bulk traps of the active film, which resulted in a controlled morphology, improved carrier extraction and suppressed ion migration for the devices fabricated in a relatively humid and O-containing environment. Conductive atomic force microscopy (C-AFM) and Kelvin probe force microscopy (KPFM) measurements were applied to study trap passivation and suppression of ion migration across the GBs of perovskite films. The results manifest that the -CN group preferably bonds with the less-coordinated Pb and the -NH- group favorably forms hydrogen bonds with the uncoordinated I. As a result, the champion device delivered a significantly boosted power conversion efficiency from 17.22% to 20.95%, with an improved fill factor (FF) from 70.54% to 80.40%, and improved ambient stability of the unencapsulated device. This study may probe research insight into the design of passivators with synergistic effects for morphology control and reduction of carrier recombination loss for equally efficient perovskite photovoltaics fabricated in ambient air.

摘要

到目前为止,在露天环境中制备具有可比甚至更好形貌的钙钛矿薄膜迫在眉睫。不幸的是,钙钛矿层晶粒表面,尤其是晶界(GBs)上大量的陷阱态会导致PSC性能显著下降。陷阱诱导的载流子复合直接对钙钛矿活性薄膜的载流子收集效率和电子性能产生不利影响。在此,引入了一种小分子有机试剂4(5)-碘咪唑(4II)来钝化活性薄膜的表面和体陷阱,这使得在相对潮湿且含氧环境中制备的器件具有可控的形貌、改善的载流子提取以及抑制的离子迁移。采用导电原子力显微镜(C-AFM)和开尔文探针力显微镜(KPFM)测量来研究陷阱钝化以及对钙钛矿薄膜晶界处离子迁移的抑制。结果表明,-CN基团优先与配位不足的Pb键合,-NH-基团则有利于与未配位的I形成氢键。结果,最优器件的功率转换效率从17.22%显著提高到20.95%,填充因子(FF)从70.54%提高到80.40%,并且未封装器件的环境稳定性得到改善。这项研究可能为设计具有协同效应的钝化剂以控制形貌和减少载流子复合损失提供研究思路,从而制备出在环境空气中同样高效的钙钛矿光伏器件。

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