Modeling Grain Boundaries in Polycrystalline Halide Perovskite Solar Cells

  • Park, Ji-Sang; 
  • Walsh, Aron
Citations

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32
Citations

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30

초록

Solar cells are semiconductor devices that generate electricity through charge generation upon illumination. For optimal device efficiency, the photogenerated carriers must reach the electrical contact layers before they recombine. A deep understanding of the recombination process and transport behavior is essential to design better devices. Halide perovskite solar cells are commonly made of a polycrystalline absorber layer, but there is no consensus on the nature and role of grain boundaries. This review concerns theoretical approaches for the investigation of extended defects. We introduce recent computational studies on grain boundaries, and their influence on point-defect distributions, in halide perovskite solar cells. We conclude with a discussion of future research directions.

키워드

extended defects; first-principles; density functional theory; CH3NH3PBI3 PEROVSKITE; ELECTRONIC-STRUCTURE; ION MIGRATION; NONRADIATIVE LOSSES; DEFECT TOLERANCE; TWIN BOUNDARIES; NATIVE DEFECTS; THIN-FILMS; RECOMBINATION; EFFICIENT
제목
Modeling Grain Boundaries in Polycrystalline Halide Perovskite Solar Cells
저자
Park, Ji-Sang; Walsh, Aron
DOI
10.1146/annurev-conmatphys-042020-025347
발행일
2021
유형
Review; Book Chapter
저널명
Annual Review of Condensed Matter Physics
권
12
페이지
95 ~ 109