Pith. sign in

Spectral weight in Chern-Simons theory with symmetry breaking

1 Pith paper cite this work. Polarity classification is still indexing.

1 Pith paper citing it
abstract

We calculate the low-energy spectral weight of a holographic superfluid coupled to a Chern-Simons term in IR radial scaling geometries characterized by a parameter $\eta$. This work was motivated by previous results where an unexpected low-energy spectral weight and a region of instability were seen, both at finite momentum, for the holographic superfluid. We characterize the effect of varying the Chern-Simons coupling $\alpha$ and condensate charge parameter $\zeta$ on these regions supporting low-energy spectral weight or a finite momentum instability. We show that $\eta$, $\alpha$ and $\zeta$ each plays a unique role in shaping these regions. We find a surface $\alpha_{\text{crit}}(\eta, \zeta)$ above which the theory is unstable. In the longitudinal channel we extend our analysis to general dimension $d$. We briefly analyze the Einstein-Maxwell-dilaton theory and find that Fermi shells exist for $d>4$.

fields

hep-th 1

years

2019 1

verdicts

CONDITIONAL 1

representative citing papers

Spectral weight in holography with momentum relaxation

hep-th · 2019-08-12 · conditional · novelty 4.0

In holographic superfluids with axion-induced momentum relaxation, the finite-momentum instability is strengthened and low-energy spectral weight, including Fermi shells, is suppressed.

citing papers explorer

Showing 1 of 1 citing paper.

  • Spectral weight in holography with momentum relaxation hep-th · 2019-08-12 · conditional · none · ref 7 · internal anchor

    In holographic superfluids with axion-induced momentum relaxation, the finite-momentum instability is strengthened and low-energy spectral weight, including Fermi shells, is suppressed.