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Magneto-optical transport properties of monolayer transition metal dichalcogenides

Hien, N.D. and Nguyen, C.V. and Hieu, N.N. and Kubakaddi, S.S. and Duque, C.A. and Mora-Ramos, M.E. and Dinh, L. and Bich, T.N. and Phuc, H.V. (2020) Magneto-optical transport properties of monolayer transition metal dichalcogenides. Physical Review B, 101 (4): 45424. ISSN 24699950

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Abstract

We study the optical transport properties of the monolayer transition metal dichalcogenides (TMDCs) such as MoS2, WS2, MoSe2, and WSe2 in the presence of a magnetic field. The TMDCs band structures are obtained and discussed by using the effective massive Dirac model, in which the spin and valley Zeeman effects as well as an external electric field are included. The magneto-optical absorption coefficient (MOAC) is derived as a function of absorbed photon energy when the carriers are scattered by random impurities combined with the intrinsic acoustic and optical phonons in TMDCs and the surface optical (SO) phonons of substrates. Our result shows that the spin-splitting feature appeared in all four TMDC materials. The combination of strong spin-orbit coupling (SOC) and Zeeman fields has doubled the Landau levels but has not changed the energy gap of the TMDCs monolayer, which can be controlled by the electric field. Because of their strong SOC effect, the absorption spectrum in monolayer TMDCs is separated into two separate peaks caused by spin up and down. At the low temperature, the MOAC intensity via impurity scattering is the biggest followed by that of the SO phonons while the intrinsic acoustic and optical phonon scatterings display the smallest. For the monolayer TMDCs on substrates, SiO2 always shows its superiority in comparison with the others. Among the four TMDC materials, MoSe2 shows the biggest MOAC intensity, while WS2 has the biggest value of the absorbed photon energy. The full-width at half-maximum (FWHM) via impurity scattering achieves its highest value in WS2, while this occurs in MoSe2 and MoS2 via intrinsic acoustic and optical phonon scatterings, respectively. Our estimation of mobility from FWHM gives good agreement with the experimental results in WS2. © 2020 American Physical Society.

Item Type: Article
Divisions: Faculties > Faculty of Mechanical Engineering
Identification Number: 10.1103/PhysRevB.101.045424
Uncontrolled Keywords: Absorption spectroscopy; Electric fields; Electromagnetic wave scattering; Full width at half maximum; Layered semiconductors; Light absorption; Molybdenum compounds; Monolayers; Optical properties; Phonon scattering; Phonons; Photons; Selenium compounds; Silica; Temperature; Transition metals; Transport properties; Tungsten compounds; External electric field; Impurity scattering; Optical phonon scattering; Optical transport properties; Random impurities; Spin-orbit couplings; Surface optical phonons; Transition metal dichalcogenides; Acoustic wave scattering
Additional Information: Language of original document: English.
URI: http://eprints.lqdtu.edu.vn/id/eprint/9077

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