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Interaction-driven topological phase diagram of twisted bilayer MoTe₂

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arxiv 2305.01006 v3 pith:KPB3OQ3L submitted 2023-05-01 cond-mat.mes-hall cond-mat.mtrl-scicond-mat.str-el

Interaction-driven topological phase diagram of twisted bilayer MoTe₂

classification cond-mat.mes-hall cond-mat.mtrl-scicond-mat.str-el
keywords phasemodelquantumthetatwistedbilayercircdiagrams
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Twisted bilayer MoTe$_2$ is a promising platform to investigate the interplay between band topology and many-body interaction. We present a theoretical study of its interaction-driven quantum phase diagrams based on a three-orbital model, which can be viewed as a generalization of the Kane-Mele-Hubbard model with one additional orbital and long-range Coulomb repulsion. We predict a cascade of phase transitions tuned by the twist angle $\theta$. At the hole filling factor $\nu=1$ (one hole per moir\'e unit cell), the ground state can be in the multiferroic phase with coexisting spontaneous layer polarization and magnetism, the quantum anomalous Hall phase, and finally the topologically trivial magnetic phases, as $\theta$ increases from $1.5^{\circ}$ to $5^{\circ}$. At $\nu=2$, the ground state can have a second-order phase transition between an antiferromagnetic phase and the quantum spin Hall phase as $\theta$ passes through a critical value. The dependence of the phase boundaries on model parameters such as the gate-to-sample distance, the dielectric constant, and the moir\'e potential amplitude is examined. The predicted phase diagrams can guide the search for topological phases in twisted transition metal dichalcogenide homobilayers.

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