Robust tunable excitonic features in monolayer transition metal dichalcogenide quantum dots

J. Fouladi-Oskouei, S. Shojaei*, Z. Liu

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

9 Citations (Scopus)

Abstract

The effects of quantum confnement on excitons in parabolic quantum dots of monolayer transition metal dichalcogenides (TMDC QDs) are investigated within a massive Dirac fermion model. A giant spin-valley coupling of the TMDC QDs is obtained, larger than that of monolayer TMDC sheets and consistent with recent experimental measurements. The exciton transition energy and the binding energy are calculated, and it is found that the strong quantum confnement results in extremely high exciton binding energies. The enormously large exciton binding energy in TMDC QDs ((EB2D ∼ 500 meV) < EBQD ≲ 1800 meV for different kinds of TMDC QDs) ensures that the many body interactions play a signifcant role in the investigation of the optical properties of these novel nanostructures. The estimated oscillator strength and radiative lifetime of excitons are strongly size-dependent and indicate a giant oscillator strength enhancement and ultrafast radiative annihilation of excitons, varying from a few tens of femtoseconds to a few picoseconds. We found that the spin-dependent band gap, spin-valley coupling, binding energy and excitonic effects can be tuned by quantum confnements, leading to tunable quantum dots in monolayer TMDCs. This fnding offers new functionality in engineering the interaction of a 2D material with light and creates promise for the quantum manipulation of spin and valley degrees of freedom in TMDC nanostructures, enabling versatile novel 2D quantum photonic and optoelectronic nanodevices.

Original languageEnglish
Article number145301
JournalJournal of Physics Condensed Matter
Volume30
Issue number14
DOIs
Publication statusPublished - Mar 12 2018
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2018 IOP Publishing Ltd Printed in the UK.

ASJC Scopus Subject Areas

  • General Materials Science
  • Condensed Matter Physics

Keywords

  • exciton binding energy
  • oscillator strength
  • spin-valley coupling
  • TMDC QDs

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