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Quantum-Confined Lifshitz Transition on Weyl Semimetal Td‑MoTe2

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Title
Quantum-Confined Lifshitz Transition on Weyl Semimetal Td‑MoTe2
Author(s)
Hyunjin Jung; Kyung-Hwan Jin; Minki Sung; Jimin Kim; Jaeyoung Kim; Han Woong Yeom
Publication Date
2024-08
Journal
ACS Nano, v.18, no.34, pp.23189 - 23195
Publisher
American Chemical Society
Abstract
Adsorption of alkali atoms onto material surfaces is widely utilized for controlling electronic properties and is particularly effective for two-dimensional materials. While tuning the chemical potential and band gap and creating quantum-confined states are well established for alkali adsorption on semiconductors, the effects on semimetallic systems remain largely elusive. Here, utilizing angle-resolved photoemission spectroscopy measurements and density functional theory calculations, we disclose the creation of two-dimensional electron gas and the quantum-confined Lifshitz transition at the surface of a Weyl semimetal T d-MoTe2 by potassium adsorption. Electrons from potassium adatoms are shown to be transferred mainly to the lowest unoccupied band within the gapped part of the Brillouin zone, which, in turn, induces strong surface band bending and quantum confinement in the topmost layer. The quantum-confined topmost layer evolves from a semimetal to a strong metal with a Lifshitz transition departing substantially from the bulk band. The present finding and its underlying mechanism can be exploited for the creation of electronic heterojunctions in van der Waals semimetals.
URI
https://pr.ibs.re.kr/handle/8788114/15727
DOI
10.1021/acsnano.4c05726
ISSN
1936-0851
Appears in Collections:
Center for Artificial Low Dimensional Electronic Systems(원자제어 저차원 전자계 연구단) > 1. Journal Papers (저널논문)
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