Density Dependent Spin-Orbit Coupling in Degenerate Quantum Gases
arXiv:2007.05999 · doi:10.1103/PhysRevA.103.L061302
Abstract
In this letter we propose a method to realize a kind of spin-orbit coupling in ultracold Bose and Fermi gases whose format and strength depend on density of atoms. Our method combines two-photon Raman transition and periodical modulation of spin-dependent interaction, which gives rise to the direct Raman process and the interaction assisted Raman process, and the latter depends on density of atoms. These two processes have opposite effects in term of spin-momentum locking and compete with each other. As the interaction modulation increases, the system undergoes a crossover from the direct Raman process dominated regime to the interaction assisted Raman process dominated regime. For this crossover, we show that for bosons, both the condensate momentum and the chirality of condensate wave function change sign, and for fermions, the Fermi surface distortion is inverted. We highlight that there exists an emergent spatial reflection symmetry in the crossover regime, which can manifest itself universally in both Bose and Fermi gases. Our method paves a way to novel phenomena in a non-abelian gauge field with intrinsic dynamics.
4 pages
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Cited by in corpus (7)
- Chaotic dynamics of Bose-Einstein condensate in a density-dependent gauge field
- Topological Micromotion of Floquet Quantum Systems
- Topologically protected boundary discrete time crystal for a solvable model
- Few-to-many vortex states of density-angular-momentum coupled Bose-Einstein condensates
- Density-Dependent Gauge Field with Raman Lattices
- Spin-1/2 operators exactly mapped to spinful canonical Fermi operators present in two bands
- Compacton existence and spin-orbit density dependence in Bose-Einstein condensates