English

Damping of Pseudo-Goldstone Fields

High Energy Physics - Theory 2022-04-08 v2 Strongly Correlated Electrons

Abstract

Approximate symmetries abound in Nature. If these symmetries are also spontaneously broken, the would-be Goldstone modes acquire a small mass, or inverse correlation length, and are referred to as pseudo-Goldstones. At nonzero temperature, the effects of dissipation can be captured by hydrodynamics at sufficiently long scales compared to the local equilibrium. Here we show that in the limit of weak explicit breaking, locality of hydrodynamics implies that the damping of pseudo-Goldstones is completely determined by their mass and diffusive transport coefficients. We present many applications: superfluids, QCD in the chiral limit, Wigner crystal and density wave phases in the presence of an external magnetic field or not, nematic phases and (anti-)ferromagnets. For electronic density wave phases, pseudo-Goldstone damping generates a contribution to the resistivity independent of the strength of disorder, which can have a linear temperature dependence provided the associated diffusivity saturates a bound. This is reminiscent of the phenomenology of strange metal high TcT_c superconductors, where charge density waves are observed across the phase diagram.

Keywords

Cite

@article{arxiv.2111.13459,
  title  = {Damping of Pseudo-Goldstone Fields},
  author = {Luca V. Delacrétaz and Blaise Goutéraux and Vaios Ziogas},
  journal= {arXiv preprint arXiv:2111.13459},
  year   = {2022}
}

Comments

v2: new appendix, references added, typos fixed, matches published version; v1: 5+ pages + appendices

R2 v1 2026-06-24T07:52:58.523Z