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

Author

Listed:
  • Zhaodong Chu

    (University of Texas at Austin)

  • Mengjin Yang

    (National Renewable Energy Laboratory)

  • Philip Schulz

    (National Renewable Energy Laboratory)

  • Di Wu

    (University of Texas at Austin)

  • Xin Ma

    (University of Texas at Austin)

  • Edward Seifert

    (University of Texas at Austin)

  • Liuyang Sun

    (University of Texas at Austin)

  • Xiaoqin Li

    (University of Texas at Austin)

  • Kai Zhu

    (National Renewable Energy Laboratory)

  • Keji Lai

    (University of Texas at Austin)

Abstract

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.

Suggested Citation

  • Zhaodong Chu & Mengjin Yang & Philip Schulz & Di Wu & Xin Ma & Edward Seifert & Liuyang Sun & Xiaoqin Li & Kai Zhu & Keji Lai, 2017. "Impact of grain boundaries on efficiency and stability of organic-inorganic trihalide perovskites," Nature Communications, Nature, vol. 8(1), pages 1-8, December.
  • Handle: RePEc:nat:natcom:v:8:y:2017:i:1:d:10.1038_s41467-017-02331-4
    DOI: 10.1038/s41467-017-02331-4
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    Cited by:

    1. Adil Chakir & Sara Aqdim & Boubker Mehdaoui & Abdeslam El Bouari, 2024. "Deciphering driven phase transitions: a study on the dielectric and electrical properties of Ca2Fe2O5," The European Physical Journal B: Condensed Matter and Complex Systems, Springer;EDP Sciences, vol. 97(4), pages 1-18, April.

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