Strongly bound and reconfigurable excitons in atomically thin Cs<sub>3</sub>Bi<sub>2</sub>I<sub>9 </sub>halide perovskite

ORAL

Abstract

Using first-principles many-body theory, we present a comprehensive computational analysis of the unique electronic structure and optoelectronic properties of atomically thin Cs3Bi2I9, a novel two-dimensional (2D) quantum material. We demonstrate that the low-energy physics is governed by flat electronic bands, characterized by a large bandgap and a strongly bound excitonic ground state in an ultraweak screening environment. Through defect engineering, achieved via isoelectronic substitution of Cl on the I site, we show the tunability of excitonic features, with exciton binding energies ranging from ~1.3 eV to as high as 3.0 eV.

*This work is supported in part by NSF DMR-2202101 (first-principles calculations) and Department of Energy DE-SC0024099 (material design and modelling).

Publication: Kastuar, Srihari M., and Chinedu E. Ekuma. "Large exciton binding energy in atomically thin Cs3Bi2I9-xClx halide perovskite" Physical Review Materials (submitted).

Presenters

  • Srihari M. Kastuar

    • Lehigh University

Authors

  • Srihari M. Kastuar

    • Lehigh University
  • Chinedu E Ekuma

    • Lehigh University