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用于倒置钙钛矿太阳能电池的吡啶基双功能分子的界面钝化

Interface Passivation of a Pyridine-Based Bifunctional Molecule for Inverted Perovskite Solar Cells.

作者信息

Ye Shi-Qi, Yin Zheng-Chun, Lin Hao-Sheng, Wang Wei-Feng, Li Mingjie, Liu Yuanyuan, Lei Yu-Xuan, Liu Wen-Rui, Yang Shangfeng, Wang Guan-Wu

机构信息

Department of Chemistry, University of Science and Technology of China, Hefei, Anhui 230026, China.

Key Laboratory of Functional Molecular Solids, Ministry of Education, Anhui Laboratory of Molecule-Based Materials, and School of Chemistry and Materials Science, Anhui Normal University, Wuhu, Anhui 241002, China.

出版信息

ACS Appl Mater Interfaces. 2024 Jun 12;16(23):30534-30544. doi: 10.1021/acsami.4c03731. Epub 2024 May 31.

Abstract

Organic-inorganic hybrid perovskite solar cells (PSCs) have recently been demonstrated to be promising renewable harvesters because of their prominent photovoltaic power conversion efficiency (PCE), although their stability and efficiency still have not reached commercial criteria. Trouble-oriented analyses showcase that defect reduction among the grain boundaries and interfaces in the prepared perovskite polycrystalline films is a practical strategy, which has prompted researchers to develop functional molecules for interface passivation. Herein, the pyridine-based bifunctional molecule dimethylpyridine-3,5-dicarboxylate (DPDC) was employed as the interface between the electron-transport layer and perovskite layer, which achieved a champion PCE of 21.37% for an inverted MAPbI-based PSC, which was greater than 18.64% for the control device. The mechanistic studies indicated that the significantly improved performance was mainly attributed to the remarkably enhanced fill factor with a value greater than 83%, which was primarily due to the nonradiative recombination suppression offered by the passivation effect of DPDC. Moreover, the promoted carrier mobility together with the enlarged crystal size contributed to a higher short-circuit current density. In addition, an increase in the open-circuit voltage was also observed in the DPDC-treated PSC, which benefited from the improved work function for reducing the energy loss during carrier transport. Furthermore, the DPDC-treated PSC showed substantially enhanced stability, with an over 80% retention rate of its initial PCE value over 300 h even at a 60% relative humidity level, which was attributed to the hydrophobic nature of the DPDC molecule and effective defect passivation. This work is expected not only to serve as an effective strategy for using a pyridine-based bifunctional molecule to passivate perovskite interfaces to enhance photovoltaic performance but also to shed light on the interface passivation mechanism.

摘要

有机-无机杂化钙钛矿太阳能电池(PSC)由于其卓越的光伏功率转换效率(PCE),近来已被证明是很有前景的可再生能量收集器,尽管其稳定性和效率仍未达到商业标准。针对问题的分析表明,减少制备的钙钛矿多晶薄膜中晶界和界面处的缺陷是一种切实可行的策略,这促使研究人员开发用于界面钝化的功能分子。在此,基于吡啶的双功能分子3,5-二羧酸二甲吡啶酯(DPDC)被用作电子传输层和钙钛矿层之间的界面,对于基于MAPbI的倒置PSC,其实现了21.37%的最佳PCE,高于对照器件的18.64%。机理研究表明,性能的显著提升主要归因于填充因子显著提高,其值大于83%,这主要是由于DPDC的钝化效应抑制了非辐射复合。此外,载流子迁移率的提高以及晶体尺寸的增大导致了更高的短路电流密度。另外,在经DPDC处理的PSC中还观察到开路电压的增加,这得益于功函数的改善,从而减少了载流子传输过程中的能量损失。此外,经DPDC处理的PSC表现出显著增强的稳定性,即使在60%相对湿度水平下,其初始PCE值在300小时内的保留率超过80%,这归因于DPDC分子的疏水性和有效的缺陷钝化。这项工作不仅有望成为使用基于吡啶的双功能分子钝化钙钛矿界面以提高光伏性能的有效策略,而且还能为界面钝化机制提供启示。

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