BCS-BEC crossover induced by a synthetic non-Abelian gauge field
Jayantha P. Vyasanakere, Shizhong Zhang, Vijay B. Shenoy

TL;DR
This paper explores how a synthetic non-Abelian gauge field induces a BCS-BEC crossover in a fermionic system, creating a new pathway to achieve superfluidity without altering interaction strength.
Contribution
It demonstrates that a uniform non-Abelian gauge field can drive a BCS-BEC crossover in spin-$rac{1}{2}$ fermions at weak attraction, introducing the concept of 'rashbons' as gauge-field-determined bosons.
Findings
Gauge field induces BCS-BEC crossover at weak attraction.
Formation of 'rashbons' as gauge-field-dependent bosons.
Topological transition of Fermi surface at critical gauge coupling.
Abstract
We investigate the ground state of interacting spin- fermions (3D) at a finite density () in the presence of a uniform non-Abelian gauge field. The gauge field configuration (GFC) described by a vector , whose magnitude determines the gauge coupling strength, generates a generalized Rashba spin-orbit interaction. For a weak attractive interaction in the singlet channel described by a small negative scattering length , the ground state in the absence of the gauge field () is a BCS (Bardeen-Cooper-Schrieffer) superfluid with large overlapping pairs. With increasing gauge coupling strength, a non-Abelian gauge field engenders a crossover of this BCS ground state to a BEC (Bose-Einstein condensate) ground state of bosons even with a weak attractive interaction that fails to…
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