Ultraviolet-Ozone Treatment: An Effective Method for Fine-Tuning Optical and Electrical Properties of Suspended and Substrate-Supported MoS2

Author:

Sarcan Fahrettin12ORCID,Armstrong Alex J.1ORCID,Bostan Yusuf K.23,Kus Esra2,McKenna Keith P.1,Erol Ayse2,Wang Yue1ORCID

Affiliation:

1. School of Physics, Engineering and Technology, University of York, Heslington, York YO10 5DD, UK

2. Department of Physics, Faculty of Science, Istanbul University, Vezneciler, Istanbul 34134, Turkey

3. Institut d’Electronique, Microelectronique & Nanotechnologie IEMN CNRS UMR 8520, Université Polytechnique Hauts de France, 59313 Valenciennes, France

Abstract

Ultraviolet-ozone (UV-O3) treatment is a simple but effective technique for surface cleaning, surface sterilization, doping, and oxidation, and is applicable to a wide range of materials. In this study, we investigated how UV-O3 treatment affects the optical and electrical properties of molybdenum disulfide (MoS2), with and without the presence of a dielectric substrate. We performed detailed photoluminescence (PL) measurements on 1–7 layers of MoS2 with up to 8 min of UV-O3 exposure. Density functional theory (DFT) calculations were carried out to provide insight into oxygen-MoS2 interaction mechanisms. Our results showed that the influence of UV-O3 treatment on PL depends on whether the substrate is present, as well as the number of layers. Additionally, 4 min of UV-O3 treatment was found to be optimal to produce p-type MoS2, while maintaining above 80% of the PL intensity and the emission wavelength, compared to pristine flakes (intrinsically n-type). UV-O3 treatment for more than 6 min not only caused a reduction in the electron density but also deteriorated the hole-dominated transport. It is revealed that the substrate plays a critical role in the manipulation of the electrical and optical properties of MoS2, which should be considered in future device fabrication and applications.

Funder

Royal Academy of Engineering

Scientific Research Projects Coordination Unit of Istanbul University

Scientific and Technological Research Council of Turkey (TUBITAK) project

EPSRC

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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