Samu Gergely F, Scheidt Rebecca A, Kamat Prashant V, Janáky Csaba
Radiation Laboratory, University of Notre Dame, Notre Dame, Indiana 46556, United States.
Department of Physical Chemistry and Materials Science, University of Szeged, Rerrich Square 1, Szeged, H-6720, Hungary.
Chem Mater. 2018 Feb 13;30(3):561-569. doi: 10.1021/acs.chemmater.7b04321. Epub 2017 Dec 5.
The unique optoelectronic properties of lead halide perovskites have triggered a new wave of excitement in materials chemistry during the past five years. Electrochemistry, spectroelectrochemistry, and photoelectrochemistry could be viable tools both for analyzing the optoelectronic features of these materials and for assembling them into hybrid architectures (e.g., solar cells). At the same time, the instability of these materials limits the pool of solvents and electrolytes that can be employed in such experiments. The focus of our study is to establish a stability window for electrochemical tests for all-inorganic CsPbBr and hybrid organic-inorganic MAPbI perovskites. In addition, we aimed to understand the reduction and oxidation events that occur and to assess the damage done during these processes at extreme electrochemical conditions. In this vein, we demonstrated the chemical, structural, and morphological changes of the films in both reductive and oxidative environments. Taking all these results together as a whole, we propose a set of boundary conditions and protocols for how electrochemical experiments with lead halide perovskites should be carried out and interpreted. The presented results will contribute to the understanding of the electrochemical response of these materials and lead to a standardization of results in the literature so that comparisons can more easily be made.
在过去五年中,卤化铅钙钛矿独特的光电特性在材料化学领域引发了新一轮热潮。电化学、光谱电化学和光电化学可能是分析这些材料光电特性以及将它们组装成混合结构(如太阳能电池)的可行工具。与此同时,这些材料的不稳定性限制了可用于此类实验的溶剂和电解质的范围。我们研究的重点是为全无机CsPbBr和有机-无机混合MAPbI钙钛矿的电化学测试建立一个稳定性窗口。此外,我们旨在了解发生的还原和氧化过程,并评估在极端电化学条件下这些过程中造成的损伤。在这方面,我们展示了薄膜在还原和氧化环境中的化学、结构和形态变化。综合所有这些结果,我们提出了一套关于如何进行和解释卤化铅钙钛矿电化学实验的边界条件和方案。所呈现的结果将有助于理解这些材料的电化学响应,并使文献中的结果标准化,以便更易于进行比较。