Misra Ravi K, Ciammaruchi Laura, Aharon Sigalit, Mogilyansky Dmitry, Etgar Lioz, Visoly-Fisher Iris, Katz Eugene A
Dept. of Solar Energy and Environmental Physics, Swiss Institute for Dryland Environmental and Energy Research, The Jacob Blaustein Institutes for Desert Research (BIDR), Ben-Gurion University of the Negev, Midreshet Sede Boqer, 8499000, Israel.
Casali Center for Applied Chemistry, The Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem, 9190401, Israel.
ChemSusChem. 2016 Sep 22;9(18):2572-2577. doi: 10.1002/cssc.201600679. Epub 2016 Aug 4.
The photochemical stability of encapsulated films of mixed halide perovskites with a range of MAPb(I Br ) (MA=methylammonium) compositions (solid solutions) was investigated under accelerated stressing using concentrated sunlight. The relevance of accelerated testing to standard operational conditions of solar cells was confirmed by comparison to degradation experiments under outdoor sunlight exposure. We found that MAPbBr films exhibited no degradation, while MAPbI and mixed halide MAPb(I Br ) films decomposed yielding crystallization of inorganic PbI accompanied by degradation of the perovskite solar light absorption, with faster absorption degradation in mixed halide films. The crystal coherence length was found to correlate with the stability of the films. We postulate that the introduction of Br into the mixed halide solid solution stressed its structure and induced more structural defects and/or grain boundaries compared to pure halide perovskites, which might be responsible for the accelerated degradation. Hence, the cause for accelerated degradation may be the increased defect density rather than the chemical composition of the perovskite materials.
在使用聚光太阳光进行加速应力测试的条件下,研究了一系列具有不同MAPb(IₓBr₁₋ₓ)(MA = 甲胺)组成(固溶体)的混合卤化物钙钛矿封装薄膜的光化学稳定性。通过与户外阳光照射下的降解实验进行比较,证实了加速测试与太阳能电池标准运行条件的相关性。我们发现,MAPbBr₃薄膜没有降解,而MAPbI₃和混合卤化物MAPb(IₓBr₁₋ₓ)薄膜发生分解,产生无机PbI₂的结晶,同时伴随着钙钛矿太阳光吸收的降解,混合卤化物薄膜中的吸收降解更快。发现晶体相干长度与薄膜的稳定性相关。我们推测,与纯卤化物钙钛矿相比,向混合卤化物固溶体中引入Br会使其结构受到应力,从而导致更多的结构缺陷和/或晶界,这可能是加速降解的原因。因此,加速降解的原因可能是缺陷密度的增加,而不是钙钛矿材料的化学成分。