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Advanced Characterization Techniques for Overcoming Challenges of Perovskite Solar Cell Materials

机译:克服钙钛矿太阳能电池材料挑战的先进特征技术

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In the last 10 years, organic-inorganic hybrid perovskite solar cells have achieved unprecedented advances, to the point where they now exhibit extremely high efficiency. However, long-term stability and areal scalability limitations impede the commercial application of perovskite materials, and appropriate diagnosistic tools have become necessary to evaluate perovskite materials. Characterization of perovskite materials is regularly misinterpretated, due to unique intrinsic and extrinsic factors: degradation from the measurement source, ion migration, phase transition, and separation. Herein, studies on perovskites are reviewed that have used advanced characterization tools to overcome characterization challenges. Cryogenic temperature assisted measurements mitigate degradation or phase transitions induced by the measurement source. In situ measurements can track the variation of perovskite materials depending on external stimuli. Spatial material properties are able to be evaluated by the use of multidimensional mapping techniques. An overview of these advanced characterization tools that can overcome the challenges associated with established tools provides the opportunity for further understanding perovskite materials and solving the remaining challenges on the road to commercialization.
机译:在过去的10年中,有机无机杂交钙钛矿太阳能电池已经取得了前所未有的进步,到现在它们表现出极高的效率。然而,长期稳定性和面积可扩展性限制阻碍了钙钛矿材料的商业应用,并且需要适当的诊断工具来评估钙钛矿材料。由于独特的内在和外在因素,钙钛矿材料的表征经常误解诠释:从测量源,离子迁移,相转变和分离中降解。在此,审查了对佩罗夫斯基茨的研究,该研究已经使用高级特征工具来克服特征挑战。低温温度辅助测量减轻测量源引起的降解或相变。原位测量可以根据外部刺激跟踪Perovskite材料的变化。能够通过使用多维映射技术来评估空间材料特性。这些高级特征工具的概述,可以克服与既定工具相关的挑战为进一步了解佩洛夫斯材料的机会,并解决了商业化之路上的剩余挑战。

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