Guanidinium Substitution Improves Self-Healing and Photodamage Resilience of MAPbI3

IF 3.3 3区 化学 Q2 CHEMISTRY, PHYSICAL
Pallavi Singh, Davide Raffaele Ceratti, Yahel Soffer, Sudipta Bera, Yishay Feldman, Michael Elbaum, Dan Oron, David Cahen, Gary Hodes
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Abstract

Self-healing materials can become game changers for developing sustainable (opto)electronics. APbX3 halide (=X) perovskites, HaPs, have shown a remarkable ability to self-heal damage. While we demonstrated self-healing in pure HaP compounds, in single crystals, and in polycrystalline thin films (as used in most devices), HaP compositions with multiple A+ (and X) constituents are preferred for solar cells. We now show self-healing in mixed A+ HaPs. Specifically, if at least 15 atom % of the methylammonium (MA+) A cation is substituted for by guanidinium (Gua+) or acetamidinium (AA+), then the self-healing rate after damage is enhanced. In contrast, replacing MA+ with dimethylammonium (DMA+), comparable in size to Gua+ or AA+, does not alter this rate. Based on the times for self-healing, we infer that the rate-determining step involves short-range diffusion of A+ and/or Pb2+ cations and that the self-healing rate correlates with the strain in the material, the A+ cation dipole moment, and H-bonding between A+ and I. These insights may offer clues for developing a detailed self-healing mechanism and understanding the kinetics to guide the design of self-healing materials. Fast recovery kinetics are important from the device perspective, as they allow complete recovery in devices during operation or when switched off (LEDs)/in the dark (photovoltaics).

Abstract Image

胍基取代可提高 MAPbI3 的自愈性和抗光损伤能力
自愈合材料可以改变可持续(光)电子器件的发展方向。APbX3 卤化物(=X-)包晶石(HaPs)已显示出卓越的损伤自愈能力。虽然我们在纯 HaP 化合物、单晶和多晶薄膜(用于大多数设备)中展示了自愈能力,但对于太阳能电池来说,含有多种 A+(和 X-)成分的 HaP 组合物是首选。现在,我们展示了混合 A+ HaPs 的自愈能力。具体来说,如果用胍(Gua+)或乙酰脒(AA+)取代至少 15 原子%的甲基铵(MA+)A 阳离子,则会提高损坏后的自愈率。相反,用二甲基铵(DMA+)代替 MA+(其大小与 Gua+ 或 AA+相当)不会改变这一速率。根据自愈合的时间,我们推断决定速率的步骤涉及 A+ 和/或 Pb2+ 阳离子的短程扩散,自愈合速率与材料中的应变、A+ 阳离子偶极矩以及 A+ 和 I- 之间的 H 键相关。这些见解可能为制定详细的自愈合机制和了解动力学提供线索,从而指导自愈合材料的设计。从器件的角度来看,快速恢复动力学非常重要,因为它能使器件在运行期间或关闭(发光二极管)/黑暗中(光伏)时完全恢复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
The Journal of Physical Chemistry C
The Journal of Physical Chemistry C 化学-材料科学:综合
CiteScore
6.50
自引率
8.10%
发文量
2047
审稿时长
1.8 months
期刊介绍: The Journal of Physical Chemistry A/B/C is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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