Ground State Properties of Anti-Ferromagnetic Spinor Bose gases in One Dimension
arXiv:1606.05461 · doi:10.1140/epjd/e2017-70483-5
Abstract
We investigate the ground state properties of anti-ferromagnetic spin-1 Bose gases in one dimensional harmonic potential from the weak repulsion regime to the strong repulsion regime. By diagonalizing the Hamiltonian in the Hilbert space composed of the lowest eigenstates of single particle and spin components, the ground state wavefunction and therefore the density distributions, magnetization distribution, one body density matrix, and momentum distribution for each components are obtained. It is shown that the spinor Bose gases of different magnetization exhibit the same total density profiles in the full interaction regime, which evolve from the single peak structure embodying the properties of Bose gases to the fermionized shell structure of spin-polarized fermions. But each components display different density profiles, and magnetic domains emerge in the strong interaction limit for . In the strong interaction limit, one body density matrix and the momentum distributions exhibit the same behaviours as those of spin-polarized fermions. The fermionization of momentum distribution takes place, in contrast to the -function-like distribution of single component Bose gases in the full interaction region.
6 pages, 7 figures
References in corpus (21)
- Spontaneous symmetry breaking in a quenched ferromagnetic spinor Bose condensate
- Spin-Orbit Coupled Spinor Bose-Einstein Condensates
- Exact Solution of Strongly Interacting Quasi-One-Dimensional Spinor Bose Gases
- Spontaneous spin textures in dipolar spinor condensates
- Spin waves in a one-dimensional spinor Bose gas
- Spin-charge separation in two-component Bose-gases
- Ground-state properties of one-dimensional ultracold Bose gases in a hard-wall trap
- Evolution from a Bose-Einstein condensate to a Tonks-Girardeau gas: An exact diagonalization study
- Composite fermionization of 1-D Bose-Bose mixtures
- Ferromagnetic behaviour in the strongly interacting two-component Bose gas
- Effective spin-chain model for strongly interacting one-dimensional atomic gases with an arbitrary spin
- Quantum magnetism in strongly interacting one-dimensional spinor Bose systems
- Antiferromagnetic Spatial Ordering in a Quenched One-dimensional Spinor Gas
- Density-functional theory of two-component Bose gases in one-dimensional harmonic traps
- Magnetic ordering and quantum statistical effects in strongly repulsive Fermi-Fermi and Bose-Fermi mixtures
- Spontaneous symmetry breaking in a spin-orbit coupled spinor condensate
- Coherent dynamics of domain formation in the Bose Ferromagnet
- Coherent spin mixing dynamics in thermal Rb spin-1 and spin-2 gases
- Density distributions for trapped one-dimensional spinor gases
- Thermodynamic properties of the itinerant-boson ferromagnet
- The weakening of fermionization of one dimensional spinor Bose gases induced by spin-exchange interaction