Quantum Geometry in the NbSe$_2$ Family I: Obstructed Compact Wannier Function and New Perturbation Theory
Jiabin Yu, Yi Jiang, Yuanfeng Xu, Dumitru C\u{a}lug\u{a}ru, Haoyu Hu, Haojie Guo, Sandra Sajan, Yongsong Wang, Miguel M. Ugeda, Fernando De Juan, B. Andrei Bernevig

TL;DR
This paper constructs accurate Wannier models for NbSe$_2$ and related materials, revealing the nature of obstructed atomic bands and introducing a new perturbation scheme to analyze their quantum geometry effects.
Contribution
It introduces simplified Wannier models and a novel perturbation method to study the quantum geometry of NbSe$_2$ family materials.
Findings
High accuracy of compact Wannier functions (>90%) for all compounds.
Single-band model shows dominant next-nearest neighbor hopping.
Effective Hamiltonian captures main features of NbSe$_2$ bands.
Abstract
We revisit the electronic structure and band topology of monolayer 1H-NbSe, which hosts both superconductivity and charge density wave, and its related compounds 1H-MoS, NbS, TaS, TaSe and WS. We construct a 6-band, a 3-band, and - simplest of all - a single-band model for this material family, by directly Wannierizing the ab initio bands. All host obstructed atomic isolated bands away from the atomic positions near the Fermi energy. We find that in the 3-band model, the obstructed atomic Wannier function can be well approximated by an optimally compact Wannier function with more than 90% accuracy for all the compounds, rising to a remarkable 94% accuracy in NbSe. Interestingly, the simplest single-band model has next nearest-neighboring hopping larger than the nearest-neighboring hopping (by nearly an order of magnitude for MoS, NbSe, TaSe and…
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