Quenching of exciton recombination in strained two-dimensional monochalcogenides
Abstract
We predict that long-lived excitons with very large binding energies can also exist in a single or few layers of monochalcogenides such as GaSe. Our theoretical study shows that excitons confined by a radial local strain field are unable to recombine despite of electrons and holes co-existing in space. The localized single-particle states are calculated in the envelope function approximation based on a three-band Hamiltonian obtained from DFT calculations. The binding energy and the decay rate of the exciton ground state are computed after including correlations in the basis of electron-hole pairs. The interplay between the localized strain and the caldera-type valence band, characteristic of few-layered monochalcogenides, creates localized electron and hole states with very different quantum numbers which hinders the recombination even for singlet excitons.
Keywords
Cite
@article{arxiv.1904.04941,
title = {Quenching of exciton recombination in strained two-dimensional monochalcogenides},
author = {J. J. Esteve-Paredes and Sahar Pakdel and J. J. Palacios},
journal= {arXiv preprint arXiv:1904.04941},
year = {2019}
}
Comments
6 pages, 4 figures