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Long carrier diffusion length in two-dimensional lead halide perovskite single crystals

  • Shreetu Shrestha
  • , Xinxin Li
  • , Hsinhan Tsai
  • , Cheng Hung Hou
  • , Hsin Hsiang Huang
  • , Dibyajyoti Ghosh
  • , Jing Jong Shyue
  • , Leeyih Wang
  • , Sergei Tretiak
  • , Xuedan Ma
  • , Wanyi Nie
  • Los Alamos National Laboratory
  • Argonne National Laboratory
  • The University of Chicago
  • Academia Sinica - Research Center for Applied Science
  • National Taiwan University
  • Los Alamos National Laboratory Theoretical Division
  • Center for Nonlinear Studies

Research output: Contribution to journalArticlepeer-review

115 Scopus citations

Abstract

Ruddlesden-Popper (RP) perovskites are two-dimensional semiconductors for high-performance optoelectronic devices. In this work, we report a long in-plane carrier diffusion length in 2D RP perovskite single crystals probed by scanning photocurrent microscopy. Carrier diffusion lengths of 7–14 μm are observed when the number of PbI6−2 octahedra between organic spacers increases from 1 to 3. Using detailed light intensity and electric-field-dependent photocurrent measurements, we attribute the observed long diffusion length to the dominating dissociated free carrier transport. This is further validated by time-resolved photoluminescence measurements, where the decay lifetime increases in the presence of an electric field. From our experiments, we conclude that the in-plane transport in RP perovskites is efficient because of the partial free carrier generation, which overcomes strong excitonic effects. Our results suggest that semiconducting devices fabricated from RP perovskite single crystals can be as efficient as their 3D counterparts.

Original languageEnglish
Pages (from-to)1107-1120
Number of pages14
JournalChem
Volume8
Issue number4
DOIs
StatePublished - Apr 14 2022

Keywords

  • Ruddlesden-Popper phase perovskites
  • SDG7: Affordable and clean energy
  • diffusion length
  • scanning photocurrent microscopy

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