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氨基酸诱导钙钛矿晶体的择优取向以增强界面电荷转移和光伏性能。

Amino-Acid-Induced Preferential Orientation of Perovskite Crystals for Enhancing Interfacial Charge Transfer and Photovoltaic Performance.

作者信息

Shih Yen-Chen, Lan Yu-Bing, Li Chia-Shuo, Hsieh Hsiao-Chi, Wang Leeyih, Wu Chih-I, Lin King-Fu

机构信息

Department of Materials Science and Engineering, National Taiwan University, Taipei, 10617, Taiwan.

Center for Condensed Matter Sciences, National Taiwan University, Taipei, 10617, Taiwan.

出版信息

Small. 2017 Jun;13(22). doi: 10.1002/smll.201604305. Epub 2017 Apr 12.

Abstract

Interfacial engineering of perovskite solar cells (PSCs) is attracting intensive attention owing to the charge transfer efficiency at an interface, which greatly influences the photovoltaic performance. This study demonstrates the modification of a TiO electron-transporting layer with various amino acids, which affects charge transfer efficiency at the TiO /CH NH PbI interface in PSC, among which the l-alanine-modified cell exhibits the best power conversion efficiency with 30% enhancement. This study also shows that the (110) plane of perovskite crystallites tends to align in the direction perpendicular to the amino-acid-modified TiO as observed in grazing-incidence wide-angle X-ray scattering of thin CH NH PbI perovskite film. Electrochemical impedance spectroscopy reveals less charge transfer resistance at the TiO /CH NH PbI interface after being modified with amino acids, which is also supported by the lower intensity of steady-state photoluminescence (PL) and the reduced PL lifetime of perovskite. In addition, based on the PL measurement with excitation from different side of the sample, amino-acid-modified samples show less surface trapping effect compared to the sample without modification, which may also facilitate charge transfer efficiency at the interface. The results suggest that appropriate orientation of perovskite crystallites at the interface and trap-passivation are the niche for better photovoltaic performance.

摘要

由于界面处的电荷转移效率对光伏性能有很大影响,钙钛矿太阳能电池(PSC)的界面工程正受到广泛关注。本研究展示了用各种氨基酸对TiO电子传输层进行改性,这会影响PSC中TiO/CH₃NH₃PbI界面处的电荷转移效率,其中l-丙氨酸改性的电池表现出最佳的功率转换效率,提高了30%。本研究还表明,在CH₃NH₃PbI钙钛矿薄膜的掠入射广角X射线散射中观察到,钙钛矿微晶的(110)面倾向于沿垂直于氨基酸改性TiO的方向排列。电化学阻抗谱显示,用氨基酸改性后,TiO/CH₃NH₃PbI界面处的电荷转移电阻降低,这也得到了钙钛矿稳态光致发光(PL)强度降低和PL寿命缩短的支持。此外,基于从样品不同侧面激发的PL测量,与未改性的样品相比,氨基酸改性的样品表现出较小的表面俘获效应,这也可能有助于提高界面处的电荷转移效率。结果表明,钙钛矿微晶在界面处的适当取向和陷阱钝化是实现更好光伏性能的关键。

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