Fragmentation and correlations in a rotating Bose-Einstein condensate undergoing breakup
Sunayana Dutta, Axel U. J. Lode, and Ofir E. Alon

TL;DR
This paper investigates how rotation causes fragmentation and correlations in a Bose-Einstein condensate confined in anharmonic traps, revealing new many-body effects beyond mean-field descriptions.
Contribution
It provides a comprehensive many-body analysis of vortex-induced fragmentation and correlations in rotating BECs, highlighting phenomena not captured by mean-field theories.
Findings
Fragmentation occurs without potential barriers at strong rotation.
Many-body variances differ from mean-field, showing opposite anisotropies.
Higher symmetry systems exhibit k-fold fragmentation and breakup into k sub-clouds.
Abstract
The theoretical investigation of rotating Bose-Einstein condensates has mainly focused on the emergence of quantum vortex states and the condensed properties of such systems. In the present work, we concentrate on other facets by examining the impact of rotation on the ground state of weakly interacting bosons confined in anharmonic potentials computed both at the mean-field level and particularly at the many-body level of theory. For the many-body computations, we employ the well-established many-body method known as the multiconfigurational time-dependent Hartree method for bosons (MCTDHB). We present how various degrees of fragmentation can be generated following the breakup of the ground state densities in anharmonic traps without ramping up a potential barrier for strong rotations. The breakup of the densities is found to be associated with the acquisition of angular momentum in…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum, superfluid, helium dynamics · Advanced Frequency and Time Standards
