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Direct spectroscopic evidence of magnetic proximity effect in MoS2 monolayer on graphene/Co

  • A magnetic field modifies optical properties and provides valley splitting in a molybdenum disulfide (MoS2) monolayer. Here we demonstrate a scalable approach to the epitaxial synthesis of MoS2 monolayer on a magnetic graphene/Co system. Using spin- and angle-resolved photoemission spectroscopy we observe a magnetic proximity effect that causes a 20 meV spin-splitting at the (Gamma) over bar point and canting of spins at the (K) over bar point in the valence band toward the in-plane direction of cobalt magnetization. Our density functional theory calculations reveal that the in-plane spin component at (K) over bar is localized on Co atoms in the valence band, while in the conduction band it is localized on the MoS2 layer. The calculations also predict a 16 meV spin-splitting at the (Gamma) over bar point and 8 meV (K) over bar-(K) over bar' valley asymmetry for an out-of-plane magnetization. These findings suggest control over optical transitions in MoS2 via Co magnetization. Our estimations show that the magnetic proximityA magnetic field modifies optical properties and provides valley splitting in a molybdenum disulfide (MoS2) monolayer. Here we demonstrate a scalable approach to the epitaxial synthesis of MoS2 monolayer on a magnetic graphene/Co system. Using spin- and angle-resolved photoemission spectroscopy we observe a magnetic proximity effect that causes a 20 meV spin-splitting at the (Gamma) over bar point and canting of spins at the (K) over bar point in the valence band toward the in-plane direction of cobalt magnetization. Our density functional theory calculations reveal that the in-plane spin component at (K) over bar is localized on Co atoms in the valence band, while in the conduction band it is localized on the MoS2 layer. The calculations also predict a 16 meV spin-splitting at the (Gamma) over bar point and 8 meV (K) over bar-(K) over bar' valley asymmetry for an out-of-plane magnetization. These findings suggest control over optical transitions in MoS2 via Co magnetization. Our estimations show that the magnetic proximity effect is equivalent to the action of the magnetic field as large as 100 T.show moreshow less

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Author details:Vladimir VoroshninORCiDGND, Artem V. Tarasov, Kirill A. Bokai, Alla Chikina, Boris V. Senkovskiy, Niels Ehlen, Dmitry Yu. Usachov, Alexander Gruneis, Maxim Krivenkov, Jaime Sanchez-BarrigaORCiD, Alexander Fedorov
DOI:https://doi.org/10.1021/acsnano.1c10391
ISSN:1936-0851
ISSN:1936-086X
Pubmed ID:https://pubmed.ncbi.nlm.nih.gov/35442015
Title of parent work (English):ACS nano
Publisher:American Chemical Society
Place of publishing:Washington
Publication type:Article
Language:English
Date of first publication:2022/04/20
Publication year:2022
Release date:2024/06/17
Tag:ARPES; MoS2; graphene; magnetic proximity effect; monolayer; spin-resolved
Volume:16
Issue:5
Number of pages:9
First page:7448
Last Page:7456
Funding institution:Ministry of Science and Higher Education of the Russian Federation; [075-15-2020-797 (13.1902.21.0024)]; Impuls-und Vernetzungsfonds der; Helmholtz-Gemeinschaft [HRSF-0067]; ERC [648589]; QM2; DFG [SE; 2575/4-1]; Marie Sklodowska-Curie grant [884104]; [CRC1238]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC classification:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Peer review:Referiert
License (German):License LogoKeine öffentliche Lizenz: Unter Urheberrechtsschutz
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