Charge-carrier complexes in monolayer semiconductors

Fuente: arXiv
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Autores principales: Mostaani, E., Hunt, R. J., Thomas, D. M., Szyniszewski, M., Montblanch, A. R. P., Barbone, M., Atature, M., Drummond, N. D., Ferrari, A. C.
Formato: Preprint
Publicado: 2022
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author Mostaani, E.
Hunt, R. J.
Thomas, D. M.
Szyniszewski, M.
Montblanch, A. R. P.
Barbone, M.
Atature, M.
Drummond, N. D.
Ferrari, A. C.
author_facet Mostaani, E.
Hunt, R. J.
Thomas, D. M.
Szyniszewski, M.
Montblanch, A. R. P.
Barbone, M.
Atature, M.
Drummond, N. D.
Ferrari, A. C.
contents The photoluminescence (PL) spectra of monolayer (1L) semiconductors feature peaks ascribed to different charge-carrier complexes. We perform diffusion quantum Monte Carlo simulations of the binding energies of these complexes and examine their response to electric and magnetic fields. We focus on quintons (charged biexcitons), since they are the largest free charge-carrier complexes in transition-metal dichalcogenides (TMDs). We examine the accuracy of the Rytova-Keldysh interaction potential between charges by comparing the binding energies of charge-carrier complexes in 1L-TMDs with results obtained using $\textit{ab initio}$ interaction potentials. Magnetic fields$<8$T change the binding energies (BEs) by$\sim0.2$ meV,T$^{-1}$, in agreement with experiments, with the BE variations of different complexes being very similar. Our results will help identify charge complexes in the PL spectra of 1L-semiconductors
format Preprint
id arxiv_https___arxiv_org_abs_2209_01593
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Charge-carrier complexes in monolayer semiconductors
Mostaani, E.
Hunt, R. J.
Thomas, D. M.
Szyniszewski, M.
Montblanch, A. R. P.
Barbone, M.
Atature, M.
Drummond, N. D.
Ferrari, A. C.
Materials Science
Mesoscale and Nanoscale Physics
Quantum Physics
The photoluminescence (PL) spectra of monolayer (1L) semiconductors feature peaks ascribed to different charge-carrier complexes. We perform diffusion quantum Monte Carlo simulations of the binding energies of these complexes and examine their response to electric and magnetic fields. We focus on quintons (charged biexcitons), since they are the largest free charge-carrier complexes in transition-metal dichalcogenides (TMDs). We examine the accuracy of the Rytova-Keldysh interaction potential between charges by comparing the binding energies of charge-carrier complexes in 1L-TMDs with results obtained using $\textit{ab initio}$ interaction potentials. Magnetic fields$<8$T change the binding energies (BEs) by$\sim0.2$ meV,T$^{-1}$, in agreement with experiments, with the BE variations of different complexes being very similar. Our results will help identify charge complexes in the PL spectra of 1L-semiconductors
title Charge-carrier complexes in monolayer semiconductors
topic Materials Science
Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2209.01593