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通过使用1-甲基苯并咪唑实现高效稳定的钙钛矿太阳能电池的有效界面缺陷钝化

Effective Interface Defect Passivation via Employing 1-Methylbenzimidazole for Highly Efficient and Stable Perovskite Solar Cells.

作者信息

Zheng Haiying, Liu Guozhen, Wu Weiwei, Xu Huifen, Pan Xu

机构信息

Institutes of Physical Science and Information Technology, Anhui University, Hefei, 230601, P. R. China.

Key Laboratory of Photovoltaic and Energy Conservation Materials, Institute of Solid State Physics, Chinese Academy of Sciences, Hefei, 230031, P. R. China.

出版信息

ChemSusChem. 2021 Aug 9;14(15):3147-3154. doi: 10.1002/cssc.202101097. Epub 2021 Jul 5.

Abstract

Although the power conversion efficiencies (PCEs) of perovskite solar cells (PSCs) have made great progress, the surface and interface defects still affect their PCE and stability and hinder the commercialization. To overcome this problem, 1-methylimidazole (1-MIm) and 1-methylbenzimidazole (1-MBIm) were used as the interfacial passivation agents to passivate the defects at surface and interface. The results indicated that, in contrast to 1-MIm, 1-MBIm displayed a stronger Lewis coordination interaction with the uncoordinated Pb to reduce the non-radiative recombination and also effectively improved the charge transfer capacity of perovskite films due to its strong π-π conjugate interaction, resulting in the better photovoltaic performance. As a result, the PCE of the champion 1-MBIm PSC was improved from 19.48 (pristine) to 21.22 % with a dramatically enhanced open-circuit voltage (V =1.15 V). More importantly, a significant improvement in long-term stability was achieved for 1-MBIm perovskite devices, which was attributed to the high-quality perovskite film caused by the strong passivation effect of 1-MBIm and the hydrogen bond with water molecules. The results offers an efficient and facile strategy by interface engineering to fabricate high-performance and stable PSCs for commercial application.

摘要

尽管钙钛矿太阳能电池(PSC)的功率转换效率(PCE)已取得巨大进展,但表面和界面缺陷仍会影响其PCE和稳定性,并阻碍其商业化。为克服这一问题,采用1-甲基咪唑(1-MIm)和1-甲基苯并咪唑(1-MBIm)作为界面钝化剂来钝化表面和界面处的缺陷。结果表明,与1-MIm相比,1-MBIm与未配位的Pb表现出更强的路易斯配位相互作用,以减少非辐射复合,并且由于其强π-π共轭相互作用,还有效地提高了钙钛矿薄膜的电荷转移能力,从而产生了更好的光伏性能。因此,最优的1-MBIm PSC的PCE从19.48%(原始的)提高到了21.22%,开路电压显著提高(V = 1.15 V)。更重要的是,1-MBIm钙钛矿器件的长期稳定性得到了显著改善,这归因于1-MBIm的强钝化作用以及与水分子的氢键作用所导致的高质量钙钛矿薄膜。该结果通过界面工程提供了一种高效且简便的策略,用于制备适用于商业应用的高性能且稳定的PSC。

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