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连续引入大晶粒 CsFA PbI 薄膜的阳离子:对相分离和热修复行为的深入了解。

Sequential Introduction of Cations Deriving Large-Grain Cs FA PbI Thin Film for Planar Hybrid Solar Cells: Insight into Phase-Segregation and Thermal-Healing Behavior.

机构信息

State Key Laboratory of Coordination Chemistry, Collaborative Innovation Center of Advanced Microstructures, Nanjing National Laboratory of Microstructures, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, P. R. China.

出版信息

Small. 2017 Mar;13(10). doi: 10.1002/smll.201603225. Epub 2016 Dec 23.

DOI:10.1002/smll.201603225
PMID:28009477
Abstract

Composition engineering of perovskite materials has been demonstrated to be important for high-performance solar cells. Recently, the energy favorable hybridization of formamidinium (FA) and cesium (Cs) in three dimension lead halide perovskites has been attracting increasing attention due to its potential benefit on durability. Herein, we reported a simple and effective method to produce phase-pure CsxFA1-xPbI3 thin film via sequential introduction of cations, in which the FA cation was introduced by interdiffusion annealing in the presence of N-methylimidazole (NMI). NMI was employed as an additive to slow down the crystallization and thus drive the formation of CsxFA1-xPbI3 with micrometer grain size, which probably facilitate the charge dissociation and transportation in photovoltaic devices. More importantly, composition dependent phase-segregation has been revealed and investigated for the first time during the phase-pure mixed-cation perovskites CsxFA1-xPbI3. The present findings demonstrated that suppressing phase-segregation of mixed-cation perovskites by meticulous composition engineering is significant for further development of efficient photovoltaics. It also suggested that phase-pure Cs0.15FA0.85PbI3 may be a promising candidate with superior phase-durability, which performed an efficiency over 16% in planar perovskite solar cells.

摘要

钙钛矿材料的组成工程对于高性能太阳能电池至关重要。最近,由于其在耐久性方面的潜在优势,三维卤化铅钙钛矿中 formamidinium(FA)和铯(Cs)的有利能量杂化受到了越来越多的关注。在此,我们报道了一种通过阳离子顺序引入来制备纯相 CsxFA1-xPbI3 薄膜的简单有效方法,其中 FA 阳离子通过存在 N-甲基咪唑(NMI)的扩散退火来引入。NMI 被用作添加剂来减缓结晶速度,从而驱动具有微米晶粒尺寸的 CsxFA1-xPbI3 的形成,这可能有利于光伏器件中的电荷离解和传输。更重要的是,首次揭示并研究了纯相混合阳离子钙钛矿 CsxFA1-xPbI3 中的组成依赖性相分离。本研究结果表明,通过精细的组成工程抑制混合阳离子钙钛矿的相分离对于高效光伏的进一步发展具有重要意义。这也表明纯相 Cs0.15FA0.85PbI3 可能是一种很有前途的候选材料,具有优越的相稳定性,在平面钙钛矿太阳能电池中效率超过 16%。

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