Ancilla theory of twisted bilayer graphene I: topological Mott localization and pseudogap metal in twisted bilayer graphene
Jing-Yu Zhao, Boran Zhou, Ya-Hui Zhang

TL;DR
This paper introduces a topological Mott localization framework for twisted bilayer graphene, revealing new phases like topological Mott semimetals and pseudogap metals, and provides a unified momentum-space description of Mott physics in topological bands.
Contribution
It proposes a novel topological Mott hybridization model in momentum space, extending Mott physics to topological bands and predicting new correlated phases in TBG.
Findings
Identification of a topological Mott semimetal at charge neutrality.
Prediction of a pseudogap metal with a small Fermi surface at certain doping levels.
Demonstration of phase transitions from correlated insulators to Mott semimetals.
Abstract
The recent experimental studies of twisted bilayer graphene (TBG) raise a fundamental question: how do we understand Mott localization in a topological band? In this work, we offer a new perspective of Mott physics, which can be generalized to TBG directly in momentum space. In our theory, the Mott gap is understood as from an exciton-like hybridization between the physical electron and an ancilla fermion . In the conventional Mott insulator of trivial band, the hybridization is -wave with , where is the on-site Hubbard interaction. On the other hand, the band topology in TBG enforces a topological Mott hybridization with in a small region around . We dub this new Mott state as topological Mott localization because of the order…
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Taxonomy
TopicsTopological Materials and Phenomena · Graphene research and applications · 2D Materials and Applications
