Functional renormalization group approach to interacting bosons at zero temperature
Andreas Sinner, Nils Hasselmann, and Peter Kopietz

TL;DR
This paper applies a non-perturbative functional renormalization group method to analyze the spectral density of interacting bosons at zero temperature, successfully describing both perturbative and non-perturbative regimes and confirming key theoretical relations.
Contribution
It develops a unified FRG approach that accurately captures the spectral properties of interacting bosons, including the infrared behavior and the Nepomnyashchy relation.
Findings
Self-energies satisfy U(1) symmetry and Nepomnyashchy relation.
Spectral density shows Bogoliubov dispersion and crossover behavior.
No infrared divergences in self-energies, consistent with theoretical expectations.
Abstract
We investigate the single-particle spectral density of interacting bosons within the non-perturbative functional renormalization group technique. The flow equations for a Bose gas are derived in a scheme which treats the two-particle density-density correlations exactly but neglects irreducible correlations among three and more particles. These flow equations are solved within a truncation which allows to extract the complete frequency and momentum structure of the normal and anomalous self-energies. Both the asymptotic small momentum regime, where perturbation regime fails, as well as the perturbative regime at larger momenta are well described within a single unified approach. The self-energies do not exhibit any infrared divergences, satisfy the U(1) symmetry constraints, and are in accordance with the Nepomnyashchy relation which states that the anomalous self-energy vanishes at…
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