Non-Fermi liquid induced by U(1) gauge field interactions: a functional renormalization group analysis
Abstract
We study the non-Fermi-liquid state formed by an isotropic, degenerate Fermi gas in two spatial dimensions interacting with a U(1) gauge field. Our calculation uses the functional renormalization group (fRG) with a soft frequency cutoff for the fermions. The fRG scheme we employ takes account of the gauge symmetry, which imposes relations (modified Ward-Takahashi identities) between the couplings which constrain the RG flow. The critical exponents and couplings we find for the resulting non-Fermi liquid are mostly insensitive to whether or not we enforce the gauge symmetry constraints, which signifies either that the constraints are superfluous or that the frequency-cutoff scheme is particularly robust. The exception is the gauge-boson mass term, which is RG-relevant about the fixed point without the constraints, but is irrelevant when they are enforced. The latter is physically accurate, as a gauge symmetry cannot be spontaneously broken. In addition, we find and for the boson dynamical exponent and scaling of the fermion self-energy, respectively. These results differ considerably from those of past works on the model, though we argue for their plausibility.
Cite
@article{arxiv.2411.18245,
title = {Non-Fermi liquid induced by U(1) gauge field interactions: a functional renormalization group analysis},
author = {Thomas P. Sheerin and Chris A. Hooley},
journal= {arXiv preprint arXiv:2411.18245},
year = {2024}
}
Comments
19 pages, 6 figures