Spontaneous exciton dissociation in transition metal dichalcogenide monolayers

Open Access
Authors
  • T. Handa
  • M. Holbrook
  • N. Olsen
  • L.N. Holtzman
  • L. Huber
  • H.I. Wang
  • M. Bonn
  • K. Barmak
  • J.C. Hone
  • A.N. Pasupathy
  • X. Zhu
Publication date 02-02-2024
Journal Science Advances
Article number eadj4060
Volume | Issue number 10 | 5
Number of pages 8
Organisations
  • Faculty of Science (FNWI) - Institute of Physics (IoP) - Van der Waals-Zeeman Institute (WZI)
Abstract
Since the seminal work on MoS2, photoexcitation in atomically thin transition metal dichalcogenides (TMDCs) has been assumed to result in excitons, with binding energies order of magnitude larger than thermal energy at room temperature. Here, we reexamine this foundational assumption and show that photoexcitation of TMDC monolayers can result in a substantial population of free charges. Performing ultrafast terahertz spectroscopy on large-area, single-crystal TMDC monolayers, we find that up to ~10% of excitons spontaneously dissociate into charge carriers with lifetimes exceeding 0.2 ns. Scanning tunneling microscopy reveals that photocarrier generation is intimately related to mid-gap defects, likely via trap-mediated Auger scattering. Only in state-of-the-art quality monolayers, with mid-gap trap densities as low as 109 cm−2, does intrinsic exciton physics start to dominate the terahertz response. Our findings reveal the necessity of knowing the defect density in understanding photophysics of TMDCs.
Document type Article
Note With supplementary file
Language English
Published at https://doi.org/10.1126/sciadv.adj4060
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