Ultracold atomic spin mixtures in ultrastable magnetic field environments
arXiv:2402.16657 · doi:10.1209/0295-5075/ad4b9a
Abstract
Ultracold atomic spin mixtures develop rich and intriguing magnetic properties when an external radiation coherently couples different spin states. In particular, the coupled mixture may acquire a critical behavior when the spin interactions equal the coupling energy. However, atomic mixtures generally feature a relatively high sensitivity to magnetic fields that can set a limitation to the observable phenomena. In this article, we present an overview of experimental studies of magnetism based on superfluid multicomponent gases in an ultrastable magnetic field environment, which recently became available.
8 pages, 5 figures
References in corpus (9)
- Fisher Information and entanglement of non-Gaussian spin states
- Generation of dark-bright soliton trains in superfluid-superfluid counterflow
- Fate of the false vacuum: towards realization with ultra-cold atoms
- Observation of false vacuum decay via bubble formation in ferromagnetic superfluids
- Magnetic solitons in Rabi-coupled Bose-Einstein condensates
- Spin-Dipole Oscillation and Polarizability of a Binary Bose-Einstein Condensate near the Miscible-Immiscible Phase Transition
- False vacuum decay: an introductory review
- Analog vacuum decay from vacuum initial conditions
- Monte Carlo matrix-product-state approach to the false vacuum decay in the monitored quantum Ising chain
Cited by in corpus (4)
- Symmetry oscillations in strongly interacting one-dimensional mixtures
- Progress toward a zero-magnetic-field environment for ultracold-atom experiments
- Confinement-Induced Resonances in Rabi-Coupled Bosonic Mixtures
- Bogolon-mediated electromagnetic wave absorption in multicomponent Bose-Einstein condensates