TY - JOUR
T1 - Transition Metal Dichalcogenides
T2 - Making Atomic-Level Magnetism Tunable with Light at Room Temperature
AU - Ortiz Jimenez, Valery
AU - Pham, Yen Thi Hai
AU - Zhou, Da
AU - Liu, Mingzu
AU - Nugera, Florence Ann
AU - Kalappattil, Vijaysankar
AU - Eggers, Tatiana
AU - Hoang, Khang
AU - Duong, Dinh Loc
AU - Terrones, Mauricio
AU - Rodriguez Gutiérrez, Humberto
AU - Phan, Manh Huong
N1 - Publisher Copyright:
© 2023 The Authors. Advanced Science published by Wiley-VCH GmbH.
PY - 2024/2/16
Y1 - 2024/2/16
N2 - The capacity to manipulate magnetization in 2D dilute magnetic semiconductors (2D-DMSs) using light, specifically in magnetically doped transition metal dichalcogenide (TMD) monolayers (M-doped TX2, where M = V, Fe, and Cr; T = W, Mo; X = S, Se, and Te), may lead to innovative applications in spintronics, spin-caloritronics, valleytronics, and quantum computation. This Perspective paper explores the mediation of magnetization by light under ambient conditions in 2D-TMD DMSs and heterostructures. By combining magneto-LC resonance (MLCR) experiments with density functional theory (DFT) calculations, we show that the magnetization can be enhanced using light in V-doped TMD monolayers (e.g., V-WS2, V-WSe2). This phenomenon is attributed to excess holes in the conduction and valence bands, and carriers trapped in magnetic doping states, mediating the magnetization of the semiconducting layer. In 2D-TMD heterostructures (VSe2/WS2, VSe2/MoS2), the significance of proximity, charge-transfer, and confinement effects in amplifying light-mediated magnetism is demonstrated. We attributed this to photon absorption at the TMD layer that generates electron–hole pairs mediating the magnetization of the heterostructure. These findings will encourage further research in the field of 2D magnetism and establish a novel design of 2D-TMDs and heterostructures with optically tunable magnetic functionalities, paving the way for next-generation magneto-optic nanodevices.
AB - The capacity to manipulate magnetization in 2D dilute magnetic semiconductors (2D-DMSs) using light, specifically in magnetically doped transition metal dichalcogenide (TMD) monolayers (M-doped TX2, where M = V, Fe, and Cr; T = W, Mo; X = S, Se, and Te), may lead to innovative applications in spintronics, spin-caloritronics, valleytronics, and quantum computation. This Perspective paper explores the mediation of magnetization by light under ambient conditions in 2D-TMD DMSs and heterostructures. By combining magneto-LC resonance (MLCR) experiments with density functional theory (DFT) calculations, we show that the magnetization can be enhanced using light in V-doped TMD monolayers (e.g., V-WS2, V-WSe2). This phenomenon is attributed to excess holes in the conduction and valence bands, and carriers trapped in magnetic doping states, mediating the magnetization of the semiconducting layer. In 2D-TMD heterostructures (VSe2/WS2, VSe2/MoS2), the significance of proximity, charge-transfer, and confinement effects in amplifying light-mediated magnetism is demonstrated. We attributed this to photon absorption at the TMD layer that generates electron–hole pairs mediating the magnetization of the heterostructure. These findings will encourage further research in the field of 2D magnetism and establish a novel design of 2D-TMDs and heterostructures with optically tunable magnetic functionalities, paving the way for next-generation magneto-optic nanodevices.
UR - https://www.scopus.com/pages/publications/85179371849
UR - https://www.scopus.com/inward/citedby.url?scp=85179371849&partnerID=8YFLogxK
U2 - 10.1002/advs.202304792
DO - 10.1002/advs.202304792
M3 - Article
C2 - 38072638
AN - SCOPUS:85179371849
SN - 2198-3844
VL - 11
JO - Advanced Science
JF - Advanced Science
IS - 7
M1 - 2304792
ER -