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Many-body effects on second-order phase transitions in spinor Bose-Einstein condensates and breathing dynamics

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dc.contributor.author MITTAL, K. M. en_US
dc.contributor.author Mistakidis, S., I. en_US
dc.contributor.author Kevrekidis, P. G. en_US
dc.contributor.author Schmelcher, P. en_US
dc.date.accessioned 2020-07-31T06:38:10Z
dc.date.available 2020-07-31T06:38:10Z
dc.date.issued 2020-07 en_US
dc.identifier.citation Physical Review A, 102(1). en_US
dc.identifier.issn 1050-2947 en_US
dc.identifier.issn 1094-1622 en_US
dc.identifier.uri http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/4925
dc.identifier.uri https://doi.org/10.1103/PhysRevA.102.013302 en_US
dc.description.abstract We unravel the correlation effects of the second-order quantum phase transitions emerging on the ground state of a harmonically trapped spin-1 Bose gas, upon varying the involved Zeeman terms, as well as its breathing dynamics triggered by quenching the trapping frequency. It is found that the boundaries of the associated magnetic phases are altered in the presence of interparticle correlations for both ferromagnetic and antiferromagnetic spin-spin interactions, an effect which becomes more prominent in the few-body scenario. Most importantly, we unveil a correlation-induced shrinking of the antiferromagnetic and broken-axisymmetry phases implying that ground states with bosons polarized in a single spin component are favored. Turning to the dynamical response of the spinor gas it is shown that its breathing frequency is independent of the system parameters while correlations lead to the formation of filamentary patterns in the one-body density of the participating components. The number of filaments is larger for increasing spin-independent interaction strengths or for smaller particle numbers. Each filament maintains its coherence and exhibits an anticorrelated behavior while distinct filaments show significant losses of coherence and are two-body correlated. Interestingly, we demonstrate that for an initial broken-axisymmetry phase an enhanced spin-flip dynamics takes place which can be tuned either via the linear Zeeman term or the quench amplitude. en_US
dc.language.iso en en_US
dc.publisher American Physical Society en_US
dc.subject Domains en_US
dc.subject TOC-JUL-2020 en_US
dc.subject 2020 en_US
dc.subject 2020-JUL-WEEK5 en_US
dc.title Many-body effects on second-order phase transitions in spinor Bose-Einstein condensates and breathing dynamics en_US
dc.type Article en_US
dc.contributor.department Dept. of Physics en_US
dc.identifier.sourcetitle Physical Review A en_US
dc.publication.originofpublisher Foreign en_US


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