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Impact of grain boundaries on efficiency and stability of organic-inorganic trihalide perovskites

机译:晶界对有机-无机三卤化物钙钛矿效率和稳定性的影响

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摘要

Organic–inorganic perovskite solar cells have attracted tremendous attention because of their remarkably high power conversion efficiencies. To further improve device performance, it is imperative to obtain fundamental understandings on the photo-response and long-term stability down to the microscopic level. Here, we report the quantitative nanoscale photoconductivity imaging on two methylammonium lead triiodide thin films with different efficiencies by light-stimulated microwave impedance microscopy. The microwave signals are largely uniform across grains and grain boundaries, suggesting that microstructures do not lead to strong spatial variations of the intrinsic photo-response. In contrast, the measured photoconductivity and lifetime are strongly affected by bulk properties such as the sample crystallinity. As visualized by the spatial evolution of local photoconductivity, the degradation process begins with the disintegration of grains rather than nucleation and propagation from visible boundaries between grains. Our findings provide insights to improve the electro-optical properties of perovskite thin films towards large-scale commercialization.
机译:有机-无机钙钛矿太阳能电池因其极高的功率转换效率而备受关注。为了进一步提高器件性能,必须对光响应和长期稳定性直至微观水平有基本的了解。在这里,我们报告光刺激的微波阻抗显微镜在具有不同效率的两个甲基铵三碘化铅薄膜上的定量纳米级光电导成像。微波信号在晶粒和晶界之间基本一致,这表明微观结构不会导致固有光响应的强烈空间变化。相反,所测量的光电导率和寿命受到诸如样品结晶度等整体性质的强烈影响。从局部光电导的空间演化可以看出,降解过程始于晶粒的崩解,而不是成核和从晶粒间可见边界的扩散。我们的发现为提高钙钛矿薄膜的电光性能以实现大规模商业化提供了见识。

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