Issue 12, 2019

Junction-configuration-dependent interfacial electronic states of a monolayer MoS2/metal contact

Abstract

Electrical contacts are crucial to the high performances of electronic devices, and they become more prominent for the popular two-dimensional (2D) semiconductors because they commonly have high contact resistances and are sensitive to the interfacial states. In this paper, taking monolayer MoS2 as an example, first-principles calculations are done to study and predict the influences of the contact mode on the interfacial electronic states of monolayer MoS2/metal (metal = Mg, Al, In, Cu, Ag, Au, Pd, Sc, and Ti). It is found that the interfacial properties are determined by the matching degree between the electronic states of the monolayer MoS2 and metal electrodes. The top contact configuration is preferred for the monolayer MoS2/Sc system as a result of an extremely low Schottky barrier (0.086 eV) as compared to that (0.439 eV) in the edge contact configuration, however, the edge contact configuration is preferred for Ag, Cu, Au, and Pd electrodes. Furthermore, metal electrodes in the top contact configuration might usually result in n-type doping of monolayer MoS2, but lead to p-type doping in the edge contact configuration. The pinning factor S (0.257, −0.009, −0.132, and −0.172) of monolayer MoS2 in both contact modes is close to zero, suggesting a strong electronic pinning effect. The findings provide theoretical guidance for the selection of electrodes for high-performance 2D material based devices.

Graphical abstract: Junction-configuration-dependent interfacial electronic states of a monolayer MoS2/metal contact

Supplementary files

Article information

Article type
Paper
Submitted
30 Aug 2018
Accepted
18 Feb 2019
First published
20 Feb 2019

J. Mater. Chem. C, 2019,7, 3607-3616

Junction-configuration-dependent interfacial electronic states of a monolayer MoS2/metal contact

Q. Fang, X. Zhao, Y. Huang, K. Xu, T. Min and F. Ma, J. Mater. Chem. C, 2019, 7, 3607 DOI: 10.1039/C8TC04341H

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