Probing early phase coarsening in a rapidly quenched Bose gas using off-resonant matter-wave interferometry
arXiv:2402.03742 · doi:10.1103/PhysRevResearch.6.043002
Abstract
We experimentally investigate the evolution of spatial phase correlations in a rapidly quenched inhomogeneous Bose gas of rubidium using off-resonant matter-wave interferometry. We measure the phase coherence length of the sample and directly probe its increase during the early stage of condensate growth before vortices are formed. Once the vortices are formed stably in the quenched condensate, the measured value of is shown to be linearly proportional to the mean distance between the vortex. These results confirm the presence of phase coarsening prior to vortex formation, which is crucial for a quantitative understanding of the resultant defect density in samples undergoing critical phase transitions.
8 pages, 4 figures
References in corpus (8)
- Critical Dynamics of Spontaneous Symmetry Breaking in a Homogeneous Bose gas
- Emergence of coherence in a uniform quasi-two-dimensional Bose gas
- Defect formation beyond Kibble-Zurek mechanism and holography
- Defect Saturation in a Rapidly Quenched Bose Gas
- Coherence length of an elongated condensate: a study by matter-wave interferometry
- Universal Early Coarsening of Quenched Bose Gases
- Variations of the Kibble-Zurek scaling exponents of trapped Bose gases
- Vortex detection in atomic Bose-Einstein condensates using neural networks trained on synthetic images