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Quantum Algorithms
Momentum-resolved spectroscopy of a Fermi liquid
arXiv
Authors: Elmer V. H. Doggen, Jami J. Kinnunen
Year
2014
Paper ID
46256
Status
Preprint
Abstract Read
~2 min
Abstract Words
112
Citations
N/A
Abstract
We consider a recent momentum-resolved radio-frequency spectroscopy experiment, in which Fermi liquid properties of a strongly interacting atomic Fermi gas were studied. Here we show that by extending the Brueckner-Goldstone model, we can formulate a theory that goes beyond basic mean-field theories and that can be used for studying spectroscopies of dilute atomic gases in the strongly interacting regime. The model hosts well-defined quasiparticles and works across a wide range of temperatures and interaction strengths. The theory provides excellent qualitative agreement with the experiment. Comparing the predictions of the present theory with the mean-field Bardeen-Cooper-Schrieffer theory yields insights into the role of pair correlations, Tan's contact, and the Hartree mean-field energy shift.
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- It adds a 2014 reference point for readers tracking recent quantum research.
- We consider a recent momentum-resolved radio-frequency spectroscopy experiment, in which Fermi liquid properties of a strongly interacting atomic Fermi gas were studied.
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