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Rashba-type spin splitting and transport properties of novel Janus XWGeN2 (X = O, S, Se, Te) monolayers

Vu, T.V. and Phuc, H.V. and Nguyen, C.V. and Vi, V.T.T. and Kartamyshev, A.I. and Hieu, N.N. (2022) Rashba-type spin splitting and transport properties of novel Janus XWGeN2 (X = O, S, Se, Te) monolayers. Physical chemistry chemical physics : PCCP, 24 (27). pp. 16512-16521. ISSN 14639084

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Abstract

We discuss and examine the stability, electronic properties, and transport characteristics of asymmetric monolayers XWGeN2 (X = O, S, Se, Te) using ab initio density functional theory. All four monolayers of quintuple-layer atomic Janus XWGeN2 are predicted to be stable and they are all indirect semiconductors in the ground state. When the spin-orbit coupling (SOC) is included, a large spin splitting at the K point is found in XWGeN2 monolayers, particularly, a giant Rashba-type spin splitting is observed around the Γ point in three structures SWGeN2, SeWGeN2, and TeWGeN2. The Rashba parameters in these structures are directionally isotropic along the high-symmetry directions Γ-K and Γ-M and the Rashba constant αR increases as the X element moves from S to Te. TeWGeN2 has the largest Rashba energy up to 37.4 meV (36.6 meV) in the Γ-K (Γ-M) direction. Via the deformation potential method, we calculate the carrier mobility of all four XWGeN2 monolayers. It is found that the electron mobilities of OWGeN2 and SWGeN2 monolayers exceed 200 cm2 V-1 s-1, which are suitable for applications in nanoelectronic devices.

Item Type: Article
Divisions: Faculties > Faculty of Mechanical Engineering
Identification Number: 10.1039/d2cp02015g
Uncontrolled Keywords: Density functional theory; Electronic properties; Ground state; Selenium compounds; Tellurium compounds; Ab initio; Density-functional-theory; Electronic transport; Indirect semiconductor; K points; Large spin; Spin splittings; Spin transport; Spin-orbit couplings; Transport characteristics; Monolayers
URI: http://eprints.lqdtu.edu.vn/id/eprint/10497

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