English

Imaging Light-Induced Migration of Dislocations in Halide Perovskites with 3D Nanoscale Strain Mapping

Materials Science 2023-04-20 v1 Chemical Physics

Abstract

In recent years, halide perovskite materials have been used to make high performance solar cell and light-emitting devices. However, material defects still limit device performance and stability. Here, we use synchrotron-based Bragg Coherent Diffraction Imaging to visualise nanoscale strain fields, such as those local to defects, in halide perovskite microcrystals. We find significant strain heterogeneity within MAPbBr3_{3} (MA = CH3_{3}NH3+_{3}^{+}) crystals in spite of their high optoelectronic quality, and identify both \langle100\rangle and \langle110\rangle edge dislocations through analysis of their local strain fields. By imaging these defects and strain fields in situ under continuous illumination, we uncover dramatic light-induced dislocation migration across hundreds of nanometres. Further, by selectively studying crystals that are damaged by the X-ray beam, we correlate large dislocation densities and increased nanoscale strains with material degradation and substantially altered optoelectronic properties assessed using photoluminescence microscopy measurements. Our results demonstrate the dynamic nature of extended defects and strain in halide perovskites and their direct impact on device performance and operational stability.

Keywords

Cite

@article{arxiv.2304.09554,
  title  = {Imaging Light-Induced Migration of Dislocations in Halide Perovskites with 3D Nanoscale Strain Mapping},
  author = {Kieran W. P. Orr and Jiecheng Diao and Muhammad Naufal Lintangpradipto and Darren J. Batey and Affan N. Iqbal and Simon Kahmann and Kyle Frohna and Milos Dubajic and Szymon J. Zelewski and Alice E. Dearle and Thomas A. Selby and Peng Li and Tiarnan A. S. Doherty and Stephan Hofmann and Osman M. Bakr and Ian K. Robinson and Samuel D. Stranks},
  journal= {arXiv preprint arXiv:2304.09554},
  year   = {2023}
}

Comments

Main text and Supplementary Information. Main text: 15 pages, 4 figures. Supplementary Information: 16 pages, 27 figures, 1 table