Flow-enhanced pairing and other unusual effects in Fermi gases in synthetic gauge fields

Vijay B. Shenoy
Phys. Rev. A 88, 033609 – Published 9 September 2013

Abstract

Recent experiments on fermions in synthetic gauge fields result in systems with a spin-orbit coupling along one spatial axis, a detuning field, and a Zeeman field. We show theoretically that the presence of all three results in interesting and unusual phenomena in a system of interacting fermions (interactions described by a scattering length). For two fermions, bound states appear only over a certain range of the center-of-mass momenta. The deepest bound state appears at a nonzero center-of-mass momentum. For center-of-mass momenta without a bound state, the gauge field induces a resonance-like feature in the scattering continuum resulting in a large scattering phase shift. In the case of many particles, we demonstrate that the system, in a parameter range, shows flow-enhanced pairing, i.e., a Fulde-Farrell-Larkin-Ovchnnikov superfluid state made of robust pairs with a finite center-of-mass momentum. Yet another regime of parameters offers the opportunity to study strongly interacting normal states of spin-orbit-coupled fermionic systems utilizing the resonance-like feature induced by the synthetic gauge field.

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  • Received 5 December 2012

DOI:https://doi.org/10.1103/PhysRevA.88.033609

©2013 American Physical Society

Authors & Affiliations

Vijay B. Shenoy*

  • Centre for Condensed Matter Theory, Department of Physics, Indian Institute of Science, Bangalore 560 012, India

  • *shenoy@physics.iisc.ernet.in

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Issue

Vol. 88, Iss. 3 — September 2013

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