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CsPbIBr钙钛矿太阳能电池中由外在离子分布引起的场效应

Extrinsic Ion Distribution Induced Field Effect in CsPbIBr Perovskite Solar Cells.

作者信息

Wang Yulong, Wang Kai, Subhani Waqas Siddique, Zhang Congqiang, Jiang Xiao, Wang Shimin, Bao Huaxi, Liu Lu, Wan Li, Liu Shengzhong Frank

机构信息

Key Laboratory for the Green Preparation and Application of Functional Materials, Ministry of Education, Hubei Key Laboratory of Polymer Materials, Hubei Collaborative Innovation Center for Advanced Organic Chemical Materials, Faculty of Materials Science and Engineering, Hubei University, Wuhan, 430062, P. R. China.

Dalian National Laboratory for Clean Energy, iChEM, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, Liaoning, 116023, P. R. China.

出版信息

Small. 2020 Apr;16(17):e1907283. doi: 10.1002/smll.201907283. Epub 2020 Apr 6.

Abstract

Excellent power conversion efficiency (PCE) and stability are the primary forces that propel the all-inorganic cesium-based halide perovskite solar cells (PSCs) toward commercialization. However, the intrinsic high density of trap state and internal nonradiative recombination of CsPbIBr perovskite film are the barriers that limit its development. In the present study, a facile additive strategy is introduced to fabricate highly efficient CsPbIBr PSCs by incorporating sulfamic acid sodium salt (SAS) into the perovskite layer. The additive can control the crystallization behaviors and optimize morphology, as well as effectively passivate defects in the bulk perovskite film, thereby resulting in a high-quality perovskite. In addition, SAS in perovskite has possibly introduced an additional internal electric field effect that favors electron transport and injection due to inhomogeneous ion distribution. A champion PCE of 10.57% (steady-output efficiency is 9.99%) is achieved under 1 Sun illumination, which surpasses that of the contrast sample by 16.84%. The modified perovskite film also exhibits improved moisture stability. The unencapsulated device maintains over 80% initial PCE after aging for 198 h in air. The results provide a suitable additive for inorganic perovskite and introduce a new conjecture to explain the function of additives in PSCs more rationally.

摘要

优异的功率转换效率(PCE)和稳定性是推动全无机铯基卤化物钙钛矿太阳能电池(PSC)走向商业化的主要动力。然而,CsPbIBr钙钛矿薄膜固有的高密度陷阱态和内部非辐射复合是限制其发展的障碍。在本研究中,引入了一种简便的添加剂策略,通过将氨基磺酸钠盐(SAS)掺入钙钛矿层来制备高效的CsPbIBr PSC。该添加剂可以控制结晶行为并优化形貌,还能有效钝化体相钙钛矿薄膜中的缺陷,从而得到高质量的钙钛矿。此外,由于不均匀的离子分布,钙钛矿中的SAS可能引入了一种额外的内电场效应,有利于电子传输和注入。在1个太阳光照下实现了10.57%的冠军PCE(稳定输出效率为9.99%),比对照样品高出16.84%。改性后的钙钛矿薄膜还表现出改善的湿度稳定性。未封装的器件在空气中老化198小时后仍保持超过80%的初始PCE。这些结果为无机钙钛矿提供了一种合适的添加剂,并引入了一个新的推测,以更合理地解释添加剂在PSC中的作用。

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