Effect of anisotropic spin-orbit coupling on condensation and superfluidity of a two dimensional Fermi gases
Kezhao Zhou

TL;DR
This paper explores how anisotropic spin-orbit coupling affects the ground state, condensation, and superfluidity in a two-dimensional Fermi gas, revealing complex dependencies on interaction and anisotropy parameters.
Contribution
It provides a detailed mean-field analysis of the condensed and superfluid fractions, including tensor superfluid responses, under anisotropic SOC in 2D Fermi gases, which is a novel investigation.
Findings
Condensed fraction exhibits non-monotonic behavior with SOC strength for certain parameters.
Superfluid fraction tensor components show minima as functions of SOC strength and anisotropy.
Superfluid response varies significantly with interaction strength and anisotropic SOC, affecting component dominance.
Abstract
We investigated the ground state properties of a two dimensional Fermi superfluid with an anisotropic spin-orbit coupling (SOC) using path-integral field theoretical method. Within the framework of mean-field theory, we obtained the condensed fraction including contributions from both singlet and triple pairing fields. We found that for small interaction parameters and large anisotropic parameters, the total condensed fraction changes non-monotonically when increasing the strength of SOC and has a global maximum. But this feature disappears with decreasing the anisotropic parameter and increasing the interaction parameter. However, condensed fraction always decrease with increasing the anisotropic parameters. Because of the anisotropy of the SOC, the superfluid fraction becomes a tensor. We obtained the superfluid fraction tensor by deriving the effective action of the phase field of…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Physics of Superconductivity and Magnetism · Quantum, superfluid, helium dynamics
