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Electronic Structure of Colloidal 2H-MoS2 Mono and Bilayers Determined by Spectroelectrochemistry

  • Kai M. Wurst
  • , Onno Strolka
  • , Jonas Hiller
  • , Jakob Keck
  • , Alfred J. Meixner
  • , Jannika Lauth
  • , Marcus Scheele*
  • *Corresponding author for this work

Research output: Contribution to journalArticleResearchpeer review

Abstract

The electronic structure of mono and bilayers of colloidal 2H-MoS2 nanosheets synthesized by wet-chemistry using potential-modulated absorption spectroscopy (EMAS), differential pulse voltammetry, and electrochemical gating measurements is investigated. The energetic positions of the conduction and valence band edges of the direct and indirect bandgap are reported and observe strong bandgap renormalization effects, charge screening of the exciton, as well as intrinsic n-doping of the as-synthesized material. Two distinct transitions in the spectral regime associated with the C exciton are found, which overlap into a broad signal upon filling the conduction band. In contrast to oxidation, the reduction of the nanosheets is largely reversible, enabling potential applications for reductive electrocatalysis. This work demonstrates that EMAS is a highly sensitive tool for determining the electronic structure of thin films with a few nanometer thicknesses and that colloidal chemistry affords high-quality transition metal dichalcogenide nanosheets with an electronic structure comparable to that of exfoliated samples.

Original languageEnglish
Article number2207101
JournalSMALL
Volume19
Issue number23
E-pub ahead of print9 Mar 2023
DOIs
Publication statusPublished - 7 Jun 2023

Keywords

  • colloidal synthesized 2H-MoS
  • differential pulse voltammetry
  • potential-dependent conductivity
  • potential-modulated absorption spectroscopy
  • thin films

ASJC Scopus subject areas

  • Biotechnology
  • General Chemistry
  • Biomaterials
  • General Materials Science

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