Spin liquid in twisted homobilayers group-VI gichalcogenides
Mohammad-Hossein Zare, and Hamid Mosadeq

TL;DR
This paper explores the rich magnetic phases, including quantum spin liquids, in twisted homobilayer group-VI gichalcogenides, emphasizing the role of tunable spin-orbit coupling in shaping these states.
Contribution
It constructs an effective spin Hamiltonian incorporating antisymmetric interactions and analyzes its classical and quantum phase diagrams using analytical and numerical methods.
Findings
Identification of diverse classical magnetic phases including AFM and spiral states
Discovery of quantum spin liquid and noncoplanar phases driven by antisymmetric couplings
Demonstration of tunable spin-orbit coupling effects in twisted TMD homobilayers
Abstract
Twisted transition metal dichalcogenide (TMD) homobilayers have recently emerged as a powerful platform for studying correlated insulating states. In the strongly correlated limit, we construct an effective spin Hamiltonian on a honeycomb lattice that includes the Heisenberg interaction and nonsymmetric interactions such as a Dzyaloshinskii-Moriya interaction and a Kane-Mele coupling for the Mott-insulating phase at half-filling. For the twisted TMD homobilayers, the spin-orbit coupling in the Hubbard model, which is expected to induce the antisymmetric exchange couplings in the effective spin Hamiltonian, is a highly tunable and experimentally accessible quantity that can be tuned by an applied electric field. In this study, we investigate classical and quantum phase diagrams of the effective spin Hamiltonian using analytical and numerical methods. We show that the model exhibits a…
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