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在钙钛矿/空穴传输层界面引入多功能三苯胺衍生物以提高钙钛矿太阳能电池的效率和稳定性

Introduction of Multifunctional Triphenylamino Derivatives at the Perovskite/HTL Interface To Promote Efficiency and Stability of Perovskite Solar Cells.

作者信息

Zhao Baohua, Yan Xinyu, Zhang Teng, Ma Xiaotong, Liu Chengben, Liu Heyuan, Yan Keyou, Chen Yanli, Li Xiyou

机构信息

College of Science , China University of Petroleum (East China) , Qingdao 266580 , China.

School of Materials Science and Engineering , China University of Petroleum (East China) , Qingdao 266580 , China.

出版信息

ACS Appl Mater Interfaces. 2020 Feb 26;12(8):9300-9306. doi: 10.1021/acsami.9b21112. Epub 2020 Feb 14.

Abstract

Surface passivation is a widely used approach to promote the efficiency and stability of perovskite solar cells (PSCs). In the present project, a series of new organic surface passivation molecules, which contain the same triphenylamino group with the hole transfer material of PSCs, have been synthesized. These new passivation molecules are supposed to have both "carrier transfer" capability and "defect passivation" potential. We find that, by using -((4-(,,-triphenyl)phenyl)ethyl)ammonium bromide (TPA-PEABr) as a surface passivation molecule, the efficiency of the PSCs can be improved from 16.69 to 18.15%, mainly due to an increased oc (1.09 V compared with 1.02 V in control devices). The increased oc is due to the reduced surface defect density and a better alignment for the related energy levels after introducing the TPA-PEABr molecules. Moreover, the stability of the PSCs can be significantly improved in TPA-PEABr passivated devices due to the hydrophobic nature of TPA-PEABr. Our results successfully demonstrate that passivation of the perovskite surface with a carefully designed multifunctional small organic molecule should be a useful approach for more stable PSCs with high efficiency.

摘要

表面钝化是一种广泛应用于提高钙钛矿太阳能电池(PSC)效率和稳定性的方法。在本项目中,合成了一系列新的有机表面钝化分子,这些分子与PSC的空穴传输材料含有相同的三苯胺基团。这些新的钝化分子被认为兼具“载流子转移”能力和“缺陷钝化”潜力。我们发现,通过使用-((4-(,, -三苯基)phenyl)乙基)溴化铵(TPA-PEABr)作为表面钝化分子,PSC的效率可以从16.69%提高到18.15%,这主要归因于开路电压(oc)的增加(与对照器件中的1.02 V相比为1.09 V)。开路电压的增加是由于引入TPA-PEABr分子后表面缺陷密度降低以及相关能级的更好对齐。此外,由于TPA-PEABr的疏水性,在TPA-PEABr钝化的器件中PSC的稳定性可以显著提高。我们的结果成功证明,用精心设计的多功能小有机分子对钙钛矿表面进行钝化应该是制备更高效、更稳定的PSC的一种有用方法。

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