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In situ Raman study on sulfur vacancies in monolayer MoS2

  • Leon Daniel
  • , Yossarian Liebsch
  • , Charleen Lintz
  • , Umair Javed
  • , Osamah Kharsah
  • , Lars Breuer
  • , Jani Kotakoski
  • , Marika Schleberger (Corresponding author)

Publications: Contribution to journalArticlePeer Reviewed

Abstract

Monolayer MoS 2 combines a direct optical bandgap with an atomically thin geometry, making it a promising platform for defect engineering. Raman studies of ion-irradiated MoS 2 are often complicated by high ion energies, incomplete defect quantification, and uncontrolled adsorbates at defect sites. Here, we irradiate large-area monolayer MoS 2 with low-energy (600 eV) Ar + ions in a ultrahigh vacuum chamber and perform in situ Raman spectroscopy over a range of fluences. Atomic-resolution scanning transmission electron microscopy reveals predominantly randomly distributed sulfur vacancies as the dominant defect type. With increasing fluence, Raman spectra show a downshift and broadening of the E (Formula presented) (Formula presented) mode, a slight upshift and broadening of the A (Formula presented) (Formula presented) mode, and the emergence of defect-activated features, including a prominent LA(M) mode. A controlled ambient exposure followed by remeasurement separates intrinsic defect signatures from extrinsic doping: an additional A (Formula presented) (Formula presented) upshift and linewidth narrowing indicate a modest, largely reversible p-doping contribution from weak physisorption at vacancy sites, corresponding to an apparent charge transfer of ∼0.02 e per STEM-counted vacancy. Within the sensitivity of our in situ Raman measurements, oxidation-related signatures remain negligible, and adsorbate effects largely vanish upon returning to vacuum and under laser illumination. These results establish Raman fingerprints of sulfur-vacancy ensembles in monolayer MoS 2 and provide quantitative guidance for defect engineering and metrology under controlled vacuum conditions.

Original languageEnglish
Article number025033
Number of pages8
Journal2D Materials
Volume13
Issue number2
DOIs
Publication statusPublished - Jun 2026

Funding

This work was funded by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) - Project numbers 461605777 [IRTG 2803 2D MATURE], 278162697 [CRC 1242] and 429784087 - the Bundesministerium für Forschung, Technologie und Raumfahrt (BMFTR, Federal Ministry of Research, Technology and Space) - Project number 05K19PG1 - and the Austrian Science Fund (FWF) [10.55776/COE5]. For open-access purposes, the authors have applied a CC-BY public copyright license to any author-accepted manuscript version arising from this submission.

FundersFunder number
Fonds zur Förderung der wissenschaftlichen Forschung (FWF)10.55776/COE5

Austrian Fields of Science 2012

  • 205019 Material sciences
  • 103042 Electron microscopy

Keywords

  • In situ
  • Raman
  • molybdenum disulfide
  • STEM
  • sulfur vacancies

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