Tunable magnetic anisotropy and phase transitions in 2D Janus transition-metal chalcogenide halides

Abstract

Two-dimensional (2D) magnetic semiconductors have received increasing interest for spintronic applications due to their tunable magnetic properties. Using first-principles calculations, we design a series of 2D novel ferromagnetic semiconductors, including VSBr and Janus M2S2BrX (M = Cr/V, X = F, Cl, I), which exhibit various exotic properties. We realize an indirect-to-direct bandgap transition in Cr2S2BrF, a giant perpendicular magnetic anisotropy in V2S2BrI, and a significant TC enhancement in both V2S2BrF and V2S2BrI. Notably, we reveal that biaxial tensile strain can induce a phase transition from ferromagnetic to antiferromagnetic states in the VSBr, V2S2BrCl and V2S2BrI, which is driven by the sign reversal of the third nearest-neighbor spin interaction J3. Meanwhile, under tensile strain, the TC of VSBr and V2S2BrCl reach 264 K and 297 K, respectively. These findings highlight our designed materials for great potential applications in advanced electronic and spintronic devices, showcasing their unique capabilities and promising performance.

Graphical abstract: Tunable magnetic anisotropy and phase transitions in 2D Janus transition-metal chalcogenide halides

Supplementary files

Article information

Article type
Paper
Submitted
29 Apr 2025
Accepted
27 Jun 2025
First published
30 Jun 2025

Phys. Chem. Chem. Phys., 2025, Advance Article

Tunable magnetic anisotropy and phase transitions in 2D Janus transition-metal chalcogenide halides

S. Han, J. Wang, T. Zhao, J. Zhou, N. Miao and Z. Sun, Phys. Chem. Chem. Phys., 2025, Advance Article , DOI: 10.1039/D5CP01626F

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