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Precursor Solution Annealing Forms Cubic-Phase Perovskite and Improves Humidity Resistance of Solar Cells

机译:前体溶液退火形成立方相钙钛矿并提高太阳能电池的耐湿性

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Solar cells with light-absorbing layers comprising organometal halide perovskites have recently exceeded 22% efficiency. Despite high power-conversion efficiencies, the stability of these devices, particularly when exposed to humidity and oxygen, remains poor. In the current study, a pathway to increase the stability of methylammonium lead iodide (CH3NH3PbI3) based solar cells towards humidity is demonstrated, while maintaining the simplicity and solution-processability of the active layers. Thermal annealing of the precursor solution prior to deposition induces the formation of cubic-phase perovskite films in the solid state at room temperature. The experiments demonstrate that this improved ambient stability is correlated with the presence of the cubic phase at device operating temperatures, with the cubic phase resisting the formation of perovskite monohydrate-a pathway of degradation in conventionally processed perovskite thin films-on exposure to humidity.
机译:具有包含有机金属卤化物钙钛矿的光吸收层的太阳能电池近来已经超过22%的效率。尽管功率转换效率很高,但是这些设备的稳定性(尤其是在暴露于湿气和氧气的情况下)仍然很差。在当前的研究中,展示了增加基于甲基铵碘化铅(CH3NH3PbI3)的太阳能电池对湿度的稳定性的途径,同时保持了活性层的简单性和溶液可加工性。在沉积之前对前体溶液进行热退火会导致在室温下以固态形成立方相钙钛矿薄膜。实验表明,这种改善的环境稳定性与器件工作温度下立方相的存在有关,该立方相可抵抗钙钛矿一水合物的形成-暴露于潮湿环境下钙钛矿薄膜的常规降解途径。

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