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Extremely efficient internal exciton dissociation through edge states in layered 2D perovskites

  • J. C. Blancon
  • , H. Tsai
  • , W. Nie
  • , C. C. Stoumpos
  • , L. Pedesseau
  • , C. Katan
  • , M. Kepenekian
  • , C. M.M. Soe
  • , K. Appavoo
  • , M. Y. Sfeir
  • , S. Tretiak
  • , P. M. Ajayan
  • , M. G. Kanatzidis
  • , J. Even
  • , J. J. Crochet
  • , A. D. Mohite
  • Los Alamos National Laboratory
  • Northwestern University
  • Institut FOTON - UMR 6082
  • Université de Rennes
  • Brookhaven National Laboratory
  • Rice University

Research output: Contribution to journalArticlepeer-review

1027 Scopus citations

Abstract

Understanding and controlling charge and energy flow in state-of-the-art semiconductor quantum wells has enabled high-efficiency optoelectronic devices. Two-dimensional (2D) Ruddlesden-Popper perovskites are solution-processed quantum wells wherein the band gap can be tuned by varying the perovskite-layer thickness, which modulates the effective electron-hole confinement. We report that, counterintuitive to classical quantum-confined systems where photogenerated electrons and holes are strongly bound by Coulomb interactions or excitons, the photophysics of thin films made of Ruddlesden-Popper perovskites with a thickness exceeding two perovskite-crystal units (>1.3 nanometers) is dominated by lower-energy states associated with the local intrinsic electronic structure of the edges of the perovskite layers. These states provide a direct pathway for dissociating excitons into longer-lived free carriers that substantially improve the performance of optoelectronic devices.

Original languageEnglish
Pages (from-to)1288-1292
Number of pages5
JournalScience
Volume355
Issue number6331
DOIs
StatePublished - Mar 24 2017

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