Engineering topological flat bands in $\Gamma$-valley moir\'e systems with Ising-type SOC: twisted 1T-ZrS$_2$ and 1T-SnSe$_2$
Hanqi Pi, Yves H. Kwan, Haoyu Hu, Yi Jiang, Dumitru C\u{a}lug\u{a}ru, Jie Shan, Kin Fai Mak, Miguel M. Ugeda, Dmitri K. Efetov, Maia G. Vergniory, B. Andrei Bernevig

TL;DR
This paper explores topological flat bands in $ ext{Γ}$-valley moiré systems based on 1T-ZrS$_2$ and 1T-SnSe$_2$, demonstrating their potential for studying correlated topological phases.
Contribution
It provides a systematic analysis of topological band structures in $ ext{Γ}$-valley moiré systems, including models, phase diagrams, and conditions for fractional Chern insulators.
Findings
Both materials exhibit topological moiré valence bands with quantum spin Hall and high spin Chern states.
Topological bands originate from inter-branch and inter-orbital couplings, not from simple single-orbital models.
Interaction-driven phases can be tuned by twist angle, interaction strength, and displacement field.
Abstract
Twisted moir\'e superlattices hosting topological flat bands provide a platform to explore the interplay between topology and correlations. Here we investigate topological band structures in -valley moir\'e systems based on 1T-ZrS and 1T-SnSe. Using large-scale ab initio calculations and continuum modelling, we demonstrate that both materials exhibit an approximate spin- symmetry and host isolated topological moir\'e valence bands, including quantum spin Hall and high spin Chern states. By constructing a hierarchy of -valley moir\'e continuum models, we show that isolated moir\'e bands carry a trivial symmetry indicator when the low-energy physics is described by a single effective orbital and a single layer-hybridized branch, either bonding or antibonding. Topological bands therefore arise from inter-branch and/or inter-orbital coupling. Moreover, we…
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