English

Flowing bosonization in the nonperturbative functional renormalization-group approach

Quantum Gases 2022-04-01 v4 High Energy Physics - Theory

Abstract

Bosonization allows one to describe the low-energy physics of one-dimensional quantum fluids within a bosonic effective field theory formulated in terms of two fields: the "density" field φ\varphi and its conjugate partner, the phase ϑ\vartheta of the superfluid order parameter. We discuss the implementation of the nonperturbative functional renormalization group in this formalism, considering a Luttinger liquid in a periodic potential as an example. We show that in order for ϑ\vartheta and φ\varphi to remain conjugate variables at all energy scales, one must dynamically redefine the field ϑ\vartheta along the renormalization-group flow. We derive explicit flow equations using a derivative expansion of the scale-dependent effective action to second order and show that they reproduce the flow equations of the sine-Gordon model (obtained by integrating out the field ϑ\vartheta from the outset) derived within the same approximation. Only with the scale-dependent (flowing) reparametrization of the phase field ϑ\vartheta do we obtain the standard phenomenology of the Luttinger liquid (when the periodic potential is sufficiently weak so as to avoid the Mott-insulating phase) characterized by two low-energy parameters, the velocity of the sound mode and the renormalized Luttinger parameter.

Keywords

Cite

@article{arxiv.2111.11458,
  title  = {Flowing bosonization in the nonperturbative functional renormalization-group approach},
  author = {Romain Daviet and Nicolas Dupuis},
  journal= {arXiv preprint arXiv:2111.11458},
  year   = {2022}
}

Comments

24 pages, 2 figures; v4) close to published version

R2 v1 2026-06-24T07:47:56.005Z