Correlation-driven threefold topological phase transition in monolayer $\mathrm{OsBr_2}$
San-Dong Guo, Wen-Qi Mu, Bang-Gui Liu

TL;DR
This study reveals how spin-orbit coupling and electronic correlation induce multiple topological phase transitions in monolayer OsBr2, leading to diverse electronic states including quantum anomalous Hall insulators and ferrovalley insulators, with potential for room-temperature applications.
Contribution
First-principles calculations demonstrate that SOC and correlation effects cause a threefold topological phase transition in monolayer OsBr2, revealing new electronic states and tunable topological properties.
Findings
Multiple topological phase transitions induced by correlation strength.
Identification of valley-polarized quantum anomalous Hall insulator and ferrovalley insulator states.
Potential for room-temperature applications due to high Curie temperatures.
Abstract
Spin-orbit coupling (SOC) combined with electronic correlation can induce topological phase transition, producing novel electronic states. Here, we investigate the impact of SOC combined with correlation effects on physical properties of monolayer , based on first-principles calculations with generalized gradient approximation plus (GGA+) approach. With intrinsic out-of-plane magnetic anisotropy, undergoes threefold topological phase transition with increasing , and valley-polarized quantum anomalous Hall insulator (VQAHI) to half-valley-metal (HVM) to ferrovalley insulator (FVI) to HVM to VQAHI to HVM to FVI transitions can be induced. These topological phase transitions are connected with sign-reversible Berry curvature and band inversion between / and orbitals. Due to symmetry, piezoelectric…
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Taxonomy
TopicsMagnetic properties of thin films · Physics of Superconductivity and Magnetism · Topological Materials and Phenomena
