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Additives, Hole Transporting Materials and Spectroscopic Methods to Characterize the Properties of Perovskite Films

机译:表征钙钛矿薄膜特性的添加剂,空穴传输材料和光谱方法

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摘要

The achievement of high efficiency and high stability in perovskite solar cells (PSCs) requires optimal selection and evaluation of the various components. After a brief introduction to the perovskite materials and their historical evolution, the first part is devoted to the hole transporting material (HTM), between photoelectrode and dark counter electrode. The basic requirements for an efficient HTM are stated. Subsequently, the most used HTM, spiro-OMeTAD, is compared to alternative HTMs, both small-molecule size species and electronically conducting polymers. The second part is devoted to additives related to the performance of the perovskite light-absorbing material itself. These are related either to the modification of the composition of the material itself or to the optimization of the morphology during the perovskite preparation stage, and their effect is in the enhancement of the power conversion efficiency, the long-term stability, or the reproducibility of the properties of the PSCs. Finally, a number of spectroscopic methods based on the UV-Vis part of the electromagnetic spectrum useful for characterizing the different perovskite material types are described in the last part of this review.
机译:钙钛矿太阳能电池(PSC)的高效率和高稳定性的实现要求对各种组件进行最佳选择和评估。在简要介绍钙钛矿材料及其历史演变之后,第一部分专门介绍光电极和暗反电极之间的空穴传输材料(HTM)。陈述了高效HTM的基本要求。随后,将使用最频繁的HTM(螺旋型OMeTAD)与替代性HTM(小分子物质和电子导电聚合物)进行比较。第二部分致力于与钙钛矿光吸收材料本身性能有关的添加剂。这些与钙钛矿制备阶段材料本身组成的改变或形态的优化有关,它们的作用在于提高功率转换效率,长期稳定性或可重复性。 PSC的属性。最后,在本综述的最后部分介绍了许多基于电磁光谱的UV-Vis部分的光谱方法,这些方法可用于表征不同的钙钛矿材料类型。

著录项

  • 来源
    《Chimia》 |2017年第11期|754-761|共8页
  • 作者单位

    Laboratory of Photonics and Interfaces Ecole Polytechnique Federate de Lausanne Laboratory of Photomolecular Science Institute of Chemical Sciences and Engineering EPFL-FSB-ISIC-LSPM Chemin des Alambics, Station 6 CH-1015 Lausanne;

    Laboratory of Photonics and Interfaces Ecole Polytechnique Federate de Lausanne Laboratory of Photomolecular Science Institute of Chemical Sciences and Engineering EPFL-FSB-ISIC-LSPM Chemin des Alambics, Station 6 CH-1015 Lausanne;

    Laboratory of Photonics and Interfaces Ecole Polytechnique Federate de Lausanne Laboratory of Photomolecular Science Institute of Chemical Sciences and Engineering EPFL-FSB-ISIC-LSPM Chemin des Alambics, Station 6 CH-1015 Lausanne;

    Laboratory of Photonics and Interfaces Ecole Polytechnique Federate de Lausanne Laboratory of Photomolecular Science Institute of Chemical Sciences and Engineering EPFL-FSB-ISIC-LSPM Chemin des Alambics, Station 6 CH-1015 Lausanne;

    Laboratory of Photonics and Interfaces Ecole Polytechnique Federate de Lausanne Laboratory of Photomolecular Science Institute of Chemical Sciences and Engineering EPFL-FSB-ISIC-LSPM Chemin des Alambics, Station 6 CH-1015 Lausanne;

    Laboratory of Photomolecular Science Ecole Polytechnique Federate de Lausanne Laboratory of Photomolecular Science Institute of Chemical Sciences and Engineering EPFL-FSB-ISIC-LSPM Chemin des Alambics, Station 6 CH-1015 Lausanne;

    Laboratory of Photomolecular Science Ecole Polytechnique Federate de Lausanne Laboratory of Photomolecular Science Institute of Chemical Sciences and Engineering EPFL-FSB-ISIC-LSPM Chemin des Alambics, Station 6 CH-1015 Lausanne;

    Laboratory of Photonics and Interfaces Ecole Polytechnique Federate de Lausanne Laboratory of Photomolecular Science Institute of Chemical Sciences and Engineering EPFL-FSB-ISIC-LSPM Chemin des Alambics, Station 6 CH-1015 Lausanne;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Crystal engineering; Hole conductor; Perovskite solar cell; Solar cell efficiency; Photoluminescence spectroscopy;

    机译:水晶工程;孔导体;钙钛矿太阳能电池;太阳能电池效率;光致发光光谱;

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