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Finite-temperature excitations of a trapped Bose-Fermi mixture

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posted on 2024-07-11, 11:59 authored by Xiaji LiuXiaji Liu, Hui HuHui Hu
We present a detailed study of the low-lying collective excitations of a spherically trapped Bose-Fermi mixture at finite temperature in the collisionless regime. The excitation frequencies of the condensate are calculated self-consistently using the static Hartree-Fock-Bogoliubov theory within the Popov approximation. The frequency shifts and damping rates due to the coupled dynamics of the condensate, noncondensate, and degenerate Fermi gas are also taken into account by means of the random-phase approximation and linear-response theory. In our treatment, the dipole excitation remains close to the bare trapping frequency for all temperatures considered, and thus is consistent with the generalized Kohn theorem. We discuss in some detail the behavior of monopole and quadrupole excitations as a function of the Bose-Fermi coupling. At nonzero temperatures we find that, as the mixture moves towards spatial separation with increasing Bose-Fermi coupling, the damping rate of the monopole (quadrupole) excitation increases (decreases). This provides us a useful signature to identify the phase transition of spatial separation.

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PDF (Accepted manuscript)

ISSN

1050-2947

Journal title

Physical Review A - Atomic, Molecular, and Optical Physics

Volume

68

Issue

3

Article number

article no. 033613

Publisher

American Physical Society

Copyright statement

Copyright © 2003 The American Physical Society. The accepted manuscript is reproduced in accordance with the copyright policy of the publisher.

Language

eng

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