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Correlated Fractional Dirac Materials

Strongly Correlated Electrons 2023-07-11 v3 Mesoscale and Nanoscale Physics High Energy Physics - Theory

Abstract

Fractional Dirac materials (FDMs) feature a fractional energy-momentum relation E(k)kαE(\vec{k}) \sim |\vec{k}|^{\alpha}, where α  (<1)\alpha \; (<1) is a real noninteger number, in contrast to that in conventional Dirac materials with α=1\alpha=1. Here we analyze the effects of short- and long-range Coulomb repulsions in two- and three-dimensional FDMs. Only a strong short-range interaction causes nucleation of a correlated insulator that takes place through a quantum critical point. The universality class of the associated quantum phase transition is determined by the correlation length exponent ν1=dα\nu^{-1}=d-\alpha and dynamic scaling exponent z=αz=\alpha, set by the band curvature. On the other hand, the fractional dispersion is protected against long-range interaction due to its nonanalytic structure. Rather, a linear Dirac dispersion gets generated under coarse graining, and the associated Fermi velocity increases logarithmically in the infrared regime, thereby yielding a two-fluid system. Altogether, correlated FDMs unfold a rich landscape accommodating unconventional emergent many-body phenomena.

Keywords

Cite

@article{arxiv.2207.09449,
  title  = {Correlated Fractional Dirac Materials},
  author = {Bitan Roy and Vladimir Juricic},
  journal= {arXiv preprint arXiv:2207.09449},
  year   = {2023}
}

Comments

Published Version in Physical Review Research as a Letter (6 Pages, 3 Figures; Supplemental Material as Ancillary file)

R2 v1 2026-06-25T01:03:34.809Z