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research article

Electrical spectroscopy of defect states and their hybridization in monolayer MoS2

Zhao, Yanfei  
•
Tripathi, Mukesh  
•
Čerņevičs, Kristiāns  
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January 3, 2023
Nature Communications

Defects in solids are unavoidable and can create complex electronic states that can significantly influence the electrical and optical properties of semiconductors. With the rapid progress in the integration of 2D semiconductors in practical devices, it is imperative to understand and characterize the influence of defects in this class of materials. Here, we examine the electrical response of defect filling and emission using deep level transient spectroscopy (DLTS) and reveal defect states and their hybridization in a monolayer MOCVD-grown material deposited on CMOS-compatible substrates. Supported by aberration-corrected STEM imaging and theoretical calculations, we find that neighboring sulfur vacancy pairs introduce additional shallow trap states via hybridization of individual vacancy levels. Even though such vacancy pairs only represent ~10% of the total defect concentration, they can have a substantial influence on the off currents and switching slopes of field-effect transistors based on 2D semiconductors. Our technique, which can quantify the energy states of different defects and their interactions, allows rapid and nondestructive electrical characterization of defect states important for the defect engineering of 2D semiconductors.

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Type
research article
DOI
10.1038/s41467-022-35651-1
Author(s)
Zhao, Yanfei  
Tripathi, Mukesh  
Čerņevičs, Kristiāns  
Avsar, Ahmet
Ji, Hyun Goo  
Gonzalez Marin, Juan Francisco  
Cheon, Cheol-Yeon  
Wang, Zhenyu  
Yazyev, Oleg V.  
Kis, Andras  
Date Issued

2023-01-03

Publisher

Nature Research

Published in
Nature Communications
Volume

14

Issue

1

Start page

44

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

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LANES  
RelationURL/DOI

IsSupplementedBy

https://doi.org/10.5281/zenodo.7389794
Available on Infoscience
January 9, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/193633
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