Multi-component states for trapped spin-1 Bose-Einstein Condensates in the presence of magnetic field
arXiv:2301.06856 · doi:10.1103/PhysRevA.108.053322
Abstract
In presence of a magnetic field, multi-component ground states appear in trapped spin-1 Bose-Einstein condensates for both ferromagnetic and anti-ferromagnetic types of spin-spin interaction. We aim to produce an accurate analytical description of the multi-component states which is of fundamental importance. Despite being in the so-called regime of Thomas-Fermi approximation (condensates with large particle number), the scenario of multi-component states is problematic under this approximation due to large variation in densities of the sub-components. We generalize the variational method that we have introduced in the article [Eur. Phys. J. Plus 137, 547 (2022)] to overcome the limitations of T-F approximation. We demonstrate that the variational method is crucial in identifying multi-component ground states. A comparison of the results of the variational method, which is multi-modal by construction, with that of single-mode approximation is also presented in this paper to demonstrate a marked improvement in accuracy over single-mode approximation. We have also looked into the phase transition between the phase-matched and polar state in a trapped condensate using the variational method and have identified substantial change in the phase boundary. The correspondence of the phase diagram of the trapped case with the homogeneous one identifies other limitations of T-F approximation as opposed to the more accurate variational method.
17 pages, 15 figures
References in corpus (17)
- Spontaneous symmetry breaking in a quenched ferromagnetic spinor Bose condensate
- Kibble-Zurek mechanism in a quenched ferromagnetic Bose-Einstein condensate
- Few-body Bose gases in low dimensions -- a laboratory for quantum dynamics
- Spontaneous Circulation in Ground-State Spinor Dipolar Bose-Einstein Condensates
- Topological defect formation in quenched ferromagnetic Bose-Einstein condensates
- High Precision, Quantum-Enhanced Gravimetry with a Bose-Einstein Condensate
- Controlling phase separation of a two-component Bose-Einstein condensate by confinement
- Phase separation in a spin-orbit coupled Bose-Einstein condensate
- Quantum state control of a Bose-Einstein condensate in an optical lattice
- Excited spin states and phase separation in spinor Bose-Einstein condensates
- Spin-Domain Formation in Antiferromagnetic Condensates
- Phase separation of a two-component dipolar Bose-Einstein condensate in the quasi-one-dimensional and quasi-two-dimensional regime
- Phase separation of binary condensates in harmonic and lattice potentials
- Dynamics of a Pair of Overlapping Polar Bright Solitons in Spin-1 Bose-Einstein Condensates
- Dynamical mean-field driven spinor condensate physics beyond the single-mode approximation
- A variational approach for the ground state profile of a trapped spinor-BEC: A detailed study of phase transition in spin-1 condensate at zero magnetic field
- Phase characterization of spinor Bose-Einstein condensates: a Majorana stellar representation approach