Stabilizing Fractional Chern States in Twisted MoTe2: Multi-band Correlations via Non-perturbative Renormalization Group
Run Hou, Andriy H. Nevidomskyy

TL;DR
This paper introduces a non-perturbative renormalization group method to study multi-band correlations in twisted MoTe2, revealing the importance of interband interactions in stabilizing fractional Chern insulators at various twist angles.
Contribution
It develops a novel non-perturbative DSRG approach to include multi-band effects, providing new insights into fractional quantum Hall states in twisted MoTe2.
Findings
Interband interactions significantly affect many-body gaps.
Dynamic correlations stabilize fractional Chern insulators at larger twist angles.
Single-particle topological features are less influential than dynamic correlations.
Abstract
The observation of fraction quantum Hall states in twisted MoTe2 has sparked a lof of interest in this phenomenon. Most theoretical works to date rely on the brute-force exact diagonalization which is limited to the one partially occupied band. In this work, we present strong evidence that the effect of higher lying bands cannot be ignored due to strong interband interactions. To tackle these effects, we introduce a non-perturbative driven similarity renormalization group (DSRG) method, originally developed for problems in quantum chemistry. We apply this methodology to twisted MoTe2 at fractional hole fillings of {\nu} = 1/3 and 2/3 across a spectrum of twist angles. Our results show that at {\nu} = 1/3, the many-body excitation energy gaps are substantially reduced compared to the one-band treatment. For {\nu} = 2/3, we find that the dynamic correlations stemming from interband…
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Taxonomy
TopicsTopological Materials and Phenomena · Graphene research and applications · 2D Materials and Applications
