Interaction-driven transition between the Wigner crystal and the fractional Chern insulator in topological flat bands
Micha{\l} Kupczy\'nski, B{\l}a\.zej Jaworowski, Arkadiusz W\'ojs

TL;DR
This paper explores how interactions induce transitions between Wigner crystal and fractional Chern insulator phases in topological flat bands, revealing how topological properties influence phase stability and tunability.
Contribution
It demonstrates the tunability between crystalline and liquid phases in topological flat bands and highlights the role of Chern number in phase stability and transition.
Findings
Wigner crystal and FCI phases can be tuned in kagome lattice models.
Chern number affects the stability of crystalline versus liquid phases.
FCI stability varies with Chern number and filling factor.
Abstract
We investigate an interaction-driven transition between crystalline and liquid states of strongly correlated spinless fermions within topological flat bands at low density (with filling factors , , ). Using exact diagonalization for finite size systems with periodic boundary conditions, we distinguish different phases, whose stability depends on the interaction range, controlled by the screening parameter of the Coulomb interaction. The crystalline phases are identified by a crystallization strength, calculated from the Fourier transforms of pair correlation density, while the Fractional Chern insulator phases are characterized using momentum counting rules, entanglement spectrum, and overlaps with corresponding Fractional Quantum Hall states. The type of the phase depends on a particular single particle model and its topological properties. We show that for …
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