Functional renormalization for trion formation in ultracold fermion gases
Abstract
The energy spectrum for three species of identical fermionic atoms close to a Feshbach resonance is computed by use of a nonperturbative flow equation. Already a simple truncation shows that for large scattering length the lowest energy state is a "trion" (or trimer) bound state of three atoms. At the location of the resonance, for , we find an infinite set of trimer bound states, with exponentially decreasing binding energy. This feature was pointed out by Efimov. It arises from limit cycle scaling, which also leads to a periodic dependence of the three body scattering coupling on . Extending our findings by continuity to nonzero density and temperature we find that a "trion phase" separates a BEC and a BCS phase, with interesting quantum phase transitions for T=0.
Cite
@article{arxiv.0809.1675,
title = {Functional renormalization for trion formation in ultracold fermion gases},
author = {S. Floerchinger and R. Schmidt and S. Moroz and C. Wetterich},
journal= {arXiv preprint arXiv:0809.1675},
year = {2009}
}
Comments
9 pages, 4 figures, minor changes, reference added