Vortex phases and domain walls in trapped spinor Bose-Einstein condensates with inhomogeneous spin-orbital-angular-momentum coupling
arXiv:2411.01590 · doi:10.1103/PhysRevA.111.053303
Abstract
We investigate the ground-state structures and vortex configurations in a two-component Bose-Einstein condensate (BEC) under the influence of spin-orbital-angular-momentum coupling (SOAMC) with a high spatial inhomogeneity and high characteristic orbital angular momentum. By modulating the coupling strength, we uncover two distinct quantum phases: a stripe phase at low coupling strengths and a new vortex-necklace phase at higher coupling intensities. The latter is characterized by vortices forming a ring-shaped structure that acts as a domain wall, a unique phase boundary between a central stripe phase and an outer single-momentum phase. For a better understanding of this new mixed phase of the system, we develop an analytical model to describe the domain wall radius as a function of coupling strength, which aligns well with numerical simulations. Our findings contribute to the understanding of SOAMC-driven quantum phase transitions and domain wall formation, offering new insights into topological phenomena in ultracold atomic systems.
References in corpus (9)
- Degenerate Quantum Gases with Spin-Orbit Coupling
- Solitons in Bose-Einstein Condensates with Helicoidal Spin-Orbit Coupling
- Spin - orbital-angular-momentum coupling in Bose-Einstein condensates
- Angular spin-orbit coupling in cold atoms
- Quantum phases of Bose-Einstein condensates with synthetic spin - orbital-angular-momentum coupling
- Dynamics of domain walls in a Bose-Einstein condensate driven by density-dependent gauge field
- Symmetry breaking and phase transitions in Bose-Einstein condensates with spin-orbital-angular-momentum coupling
- Making ghost vortices visible in two-component Bose-Einstein condensates
- Fine structure of the stripe phase in ring-shaped Bose-Einstein condensates with spin-orbital-angular-momentum coupling