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Cited 13 time in webofscience Cited 13 time in scopus
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Proton beam flux dependent work function of mono-layer MoS2

Authors
Kwon, SangwooChoi, Soo HoKim, You JoongYoon, Im TaekYang, Woochul
Issue Date
30-Aug-2018
Publisher
ELSEVIER SCIENCE SA
Keywords
Monolayer; Molybdenum disulfide; Proton irradiation; Work function; Defect formation; Sulfur-vacancy
Citation
THIN SOLID FILMS, v.660, pp 766 - 770
Pages
5
Indexed
SCI
SCIE
SCOPUS
Journal Title
THIN SOLID FILMS
Volume
660
Start Page
766
End Page
770
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/24420
DOI
10.1016/j.tsf.2018.03.078
ISSN
0040-6090
1879-2731
Abstract
Monolayer (ML)-molybdenum disulfide (MoS2) with a direct band gap of similar to 1.8 eV exhibits considerable potential for advanced electronic and optical device applications. The surface electronic properties of ML-MoS2 need to be controlled for developing novel MoS2-based devices. In this study, we investigated the work function variation of chemical vapor deposition-grown ML-MoS2 that was controlled by proton irradiation. The crystallinity of the ML-MoS2 was confirmed by micro-Raman and Photoluminescence measurements. The work functions of the ML-MoS2 irradiated with varying proton beam flux were measured by Kelvin probe force microscopy. As the ML-MoS2 were exposed to the proton beam flux ranging from 1x10(12) to 1x10(14) protons/cm(2) at the same beam energy of 10 MeV, the contact potential difference of the MoS2 increased up to about 0.108 V with increased proton beam flux. Based on the referenced value of the Au work function (approximate to 5.1 eV), the work functions of nontreated ML-MoS2 and proton-irradiated ML-MoS2 with a proton beam flux of 1x10(14) protons/cm(2) were determined to be 5.031 eV and 4.992 eV, respectively. The decrease of the work function of the MoS2 with increased proton beam flux is due to the defect formation induced by proton irradiation. We suggest the possibility of engineering the surface potential and electronic properties of ML-MoS2 through controlling proton irradiation conditions.
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