Antiferromagnetic spatial ordering in a quenched one-dimensional spinor gas

We have experimentally observed the emergence of spontaneous antiferromagnetic spatial order in a sodium spinor Bose-Einstein condensate that was quenched through a magnetic phase transition. For negative values of the quadratic Zeeman shift, a gas initially prepared in the F=1, m(F)=0 state collaps...

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Veröffentlicht in:Physical review letters 2013-04, Vol.110 (16), p.165301-165301, Article 165301
Hauptverfasser: Vinit, A, Bookjans, E M, Sá de Melo, C A R, Raman, C
Format: Artikel
Sprache:eng
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Zusammenfassung:We have experimentally observed the emergence of spontaneous antiferromagnetic spatial order in a sodium spinor Bose-Einstein condensate that was quenched through a magnetic phase transition. For negative values of the quadratic Zeeman shift, a gas initially prepared in the F=1, m(F)=0 state collapsed into a dynamically evolving superposition of all three spin projections, m(F)=0, ±1. The quench gave rise to rich, nonequilibrium behavior where both nematic and magnetic spin waves were generated. We characterized the spatiotemporal evolution through two particle correlations between atoms in each pair of spin states. These revealed dramatic differences between the dynamics of the spin correlations and those of the spin populations.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.110.165301