4.6 Article

Probing momentum-indirect excitons by near-resonance photoluminescence excitation spectroscopy in WS2 monolayer

Journal

2D MATERIALS
Volume 7, Issue 3, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/2053-1583/ab817a

Keywords

transition metal dichalcogenides; monolayer; near-resonant photoluminescence excitation spectroscopy; light absorption; exciton-phonon interaction; momentum-indirect excitons

Funding

  1. Singapore National Research Foundation through an NRF-ANR joint programme [NRF2017-NRF-ANR005 2D CHIRAL]
  2. Singapore Ministry of Education via AcRF Tier 3 Programme Geometrical Quantum Materials [MOE2018-T3-1-002]
  3. Singapore Ministry of Education via AcRF Tier 2 grant [MOE2017-T2-1-040]
  4. Singapore Ministry of Education via Tier1 grants [RG 113/16, RG 194/17]
  5. Presidential Postdoctoral Fellowship program of the Nanyang Technological University

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Coulomb-bound electron-hole pairs (excitons) dominate the optical response of atomically-thin transition metal dichalcogenides (TMDs) semiconductors. The photoluminescence spectrum in W-based TMDs monolayers (i.e. WS2 and WSe2) at low temperature exhibits much richer features than Mo-based TMDs monolayers, whose origin is currently not well understood. Herein, by using near-resonant photoluminescence excitation spectroscopy, we probe the scattering events between excitons and phonons with large (k) over cap -momentum, which provides strong evidence for the momentum-indirect nature of the optical bandgap in monolayer WS2. The scattering between carriers and zone-edge phonons creates excitons at different valleys, among which, the lowest-energy is momentum-indirect. Our findings highlight that more efforts are required to solve the current debate on the inherent bandgap nature of TMD monolayers and the complex photoluminescence spectrum reported on W-based compounds.

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