Hydrogen‐induced Sulfur Vacancies on the MoS2 Basal Plane Studied by Ambient Pressure XPS and DFT Calculations

Author:

Ozaki Fumihiko1,Tanaka Shunsuke1ORCID,Choi YoungHyun1,Osada Wataru1,Mukai Kozo1,Kawamura Mitsuaki2ORCID,Fukuda Masahiro1ORCID,Horio Masafumi1ORCID,Koitaya Takanori3ORCID,Yamamoto Susumu45ORCID,Matsuda Iwao1ORCID,Ozaki Taisuke1,Yoshinobu Jun1ORCID

Affiliation:

1. The Institute for Solid State Physics The University of Tokyo 5-1-5, Kashiwanoha 277-8581 Kashiwa Chiba Japan

2. Information Technology Center The University of Tokyo 2-11-16 Yayoi, Bunkyo 113-8658 Tokyo Japan

3. Department of Chemistry, Graduate school of Science Kyoto University 606-8502 Kyoto Japan

4. International Center for Synchrotron Radiation Innovation Smart Tohoku University 980-8577 Sendai Miyagi Japan

5. Institute of Multidisciplinary Research for Advanced Materials Tohoku University 980-8577 Sendai Miyagi Japan

Abstract

AbstractSulfur vacancy on an MoS2 basal plane plays a crucial role in device performance and catalytic activity; thus, an understanding of the electronic states of sulfur vacancies is still an important issue. We investigate the electronic states on an MoS2 basal plane by ambient‐pressure X‐ray photoelectron spectroscopy (AP‐XPS) and density functional theory calculations while heating the system in hydrogen. The AP‐XPS results show a decrease in the intensity ratio of S 2p to Mo 3d, indicating that sulfur vacancies are formed. Furthermore, low‐energy components are observed in Mo 3d and S 2p spectra. To understand the changes in the electronic states induced by sulfur vacancy formation at the atomic scale, we calculate the core‐level binding energies for the model vacancy surfaces. The calculated shifts for Mo 3d and S 2p with the formation of sulfur vacancy are consistent with the experimentally observed binding energy shifts. Mulliken charge analysis indicates that this is caused by an increase in the electronic density associated with the Mo and S atoms around the sulfur vacancy as compared to the pristine surface. The present investigation provides a guideline for sulfur vacancy engineering.

Publisher

Wiley

Subject

Physical and Theoretical Chemistry,Atomic and Molecular Physics, and Optics

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