Condensation and thermalization of an easy-plane ferromagnet in a spinor Bose gas
arXiv:2205.06188 · doi:10.1038/s41567-022-01779-6
Abstract
The extensive control of spin makes spintronics a promising candidate for future scalable quantum devices. For the generation of spin-superfluid systems, a detailed understanding of the build-up of coherence and relaxation is necessary. However, to determine the relevant parameters for robust coherence properties and faithfully witnessing thermalization, the direct access to space- and time-resolved spin observables is needed. Here, we study the thermalization of an easy-plane ferromagnet employing a homogeneous one-dimensional spinor Bose gas. Building on the pristine control of preparation and readout we demonstrate the dynamic emergence of long-range coherence for the spin field and verify spin-superfluidity by experimentally testing Landau's criterion. We reveal the structure of the emergent quasi-particles: one 'massive'(Higgs) mode, and two 'massless' (Goldstone) modes - a consequence of explicit and spontaneous symmetry breaking, respectively. Our experiments allow for the first time to observe the thermalization of an easy-plane ferromagnetic Bose gas; we find agreement for the relevant momentum-resolved observables with a thermal prediction obtained from an underlying microscopic model within the Bogoliubov approximation. Our methods and results pave the way towards a quantitative understanding of condensation dynamics in large magnetic spin systems and the study of the role of entanglement and topological excitations for its thermalization.
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- Berezinskii-Kosterlitz-Thouless transitions in an easy-plane ferromagnetic superfluid
- Absence of the breakdown of ferrodark solitons exhibiting a snake instability
- Berezinskii-Kosterlitz-Thouless transitions in a ferromagnetic superfluid: effects of axial magnetization
- Stochastic Gross-Pitaevskii theory for a spin-1 Bose gas: Application to superfluidity in two dimensions
- Extracting the symmetries of nonequilibrium quantum many-body systems
- Possible Bose-Einstein condensation of magnons in a S = 5/2 honeycomb lattice
- Motion of ferrodark solitons in trapped superfluids: spin corrections and emergent oscillators
- Dynamics of Polar-Core Spin Vortices in Inhomogeneous Spin-1 Bose-Einstein Condensates
- Emergent quantum field theories on curved spacetimes in spinor Bose-Einstein condensates: from scalar to Proca fields
- Characterizing dynamical phase transitions in a spinor Bose-Einstein condensate via quantum and semiclassical analyses
- Observation of sine-Gordon-like solitons in a spinor Bose-Einstein condensate