English

Transition Metal Dichalcogenide MoS${}_2$: oxygen and fluorine functionalization for selective plasma processing

Materials Science 2026-05-01 v5 Mesoscale and Nanoscale Physics Chemical Physics

Abstract

Low-temperature plasma processing is a promising technique for tailoring transition metal dichalcogenides (TMDs). For chalcogen substitution processing, a key challenge is to identify the ion energy window that enables selective chalcogen removal while preserving the metal lattice. Using ab-initio molecular dynamics (AIMD), we demonstrate that oxygen and fluorine functionalization widen the processing window by significantly lowering the sulfur sputtering energy threshold (Esputt,SE_{\text{sputt,S}}) of MoS2{}_2 from 30\sim 30 eV to 10\sim 10 eV via formation of sputtering products such as SO2{}_2 and SFn{}_n. Additionally, we show that experimentally relevant cryogenic temperatures strongly affect Esputt,SE_{\text{sputt,S}}. The dependence is confirmed via AIMD and also predicted by a mechanistic parameter-free theory, suggesting that Esputt(T)E_{\text{sputt}}(T) generalizes to other TMDs, functionalization, and surface impacts in general. Our results highlight oxygen/fluorine functionalization, ionic impact angle, and material temperature to be key control parameters for selective, damage-controlled chalcogen removal in TMD processing.

Keywords

Cite

@article{arxiv.2601.11891,
  title  = {Transition Metal Dichalcogenide MoS${}_2$: oxygen and fluorine functionalization for selective plasma processing},
  author = {Yury Polyachenko and Yuri Barsukov and Shoaib Khalid and Igor Kaganovich},
  journal= {arXiv preprint arXiv:2601.11891},
  year   = {2026}
}

Comments

final version accepted to JPCL

R2 v1 2026-07-01T09:08:38.542Z