Feynman path-integral treatment of the BEC-impurity polaron
Abstract
The description of an impurity atom in a Bose-Einstein condensate can be cast in the form of Fröhlich’s polaron Hamiltonian, where the Bogoliubov excitations play the role of the phonons. An expression for the corresponding polaronic coupling strength is derived, relating the coupling strength to the scattering lengths, the trap size and the number of Bose condensed atoms. This allows to identify several approaches to reach the strong-coupling limit for the quantum gas polarons, whereas this limit was hitherto experimentally inaccessible in solids. We apply Feynman’s path-integral method to calculate for all coupling strengths the polaronic shift in the free energy and the increase in the effective mass. The effect of temperature on these quantities is included in the description. We find similarities to the acoustic polaron results and indications of a transition between free polarons and self-trapped polarons. The prospects, based on the current theory, of investigating the polaron physics with ultracold gases are discussed for lithium atoms in a sodium condensate.
- Publication:
-
Physical Review B
- Pub Date:
- November 2009
- DOI:
- arXiv:
- arXiv:0906.4455
- Bibcode:
- 2009PhRvB..80r4504T
- Keywords:
-
- 74.20.Mn;
- 71.38.Fp;
- 03.75.Hh;
- 67.85.De;
- Nonconventional mechanisms;
- Large or Frohlich polarons;
- Static properties of condensates;
- thermodynamical statistical and structural properties;
- Dynamic properties of condensates;
- excitations and superfluid flow;
- Condensed Matter - Quantum Gases
- E-Print:
- 13 pages, 3 figures