Topological two-body interaction obstructing trivial ground states: an indicator of fractional Chern insulators
Nobuyuki Okuma, Tomonari Mizoguchi

TL;DR
This paper explores how the topological properties of effective two-body interactions in Chern bands influence the stabilization of fractional Chern insulators, revealing a correlation between two-particle band topology and FCI realization.
Contribution
It introduces a framework linking two-particle band topology to effective interactions, providing a new perspective on the role of interaction topology in FCIs.
Findings
Dominant two-particle bands with unit Chern number correlate with robust FCIs.
The topology of interactions can obstruct trivial ground states.
The approach relates two-particle band structure to effective interaction topology.
Abstract
The search for candidate materials for fractional Chern insulators (FCIs) has mainly focused on the topological and geometrical structures of single-particle Chern bands. However, there are inherent limitations in approaches that neglect interaction effects, highlighting the need for complementary methods. In this work, we discuss how the Chern number defined for the effective interaction projected onto a Chern band is related to the stabilization of FCIs. Specifically, by formulating both the effective interaction and the two-particle problem using a common matrix, we establish a connection between the two-particle band structure and the effective interaction. This formulation allows us to characterize the effective interaction through the topology of the two-particle band. To investigate the relationship between topological effective interactions and FCIs, we perform numerical…
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Taxonomy
TopicsTopological Materials and Phenomena · Quantum and electron transport phenomena · Quantum Mechanics and Non-Hermitian Physics
