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Evidence for an atomic chiral superfluid with topological excitations.

Authors :
Wang XQ
Luo GQ
Liu JY
Liu WV
Hemmerich A
Xu ZF
Source :
Nature [Nature] 2021 Aug; Vol. 596 (7871), pp. 227-231. Date of Electronic Publication: 2021 Aug 11.
Publication Year :
2021

Abstract

Topological superfluidity is an important concept in electronic materials as well as ultracold atomic gases <superscript>1</superscript> . However, although progress has been made by hybridizing superconductors with topological substrates, the search for a material-natural or artificial-that intrinsically exhibits topological superfluidity has been ongoing since the discovery of the superfluid <superscript>3</superscript> He-A phase <superscript>2</superscript> . Here we report evidence for a globally chiral atomic superfluid, induced by interaction-driven time-reversal symmetry breaking in the second Bloch band of an optical lattice with hexagonal boron nitride geometry. This realizes a long-lived Bose-Einstein condensate of <superscript>87</superscript> Rb atoms beyond present limits to orbitally featureless scenarios in the lowest Bloch band. Time-of-flight and band mapping measurements reveal that the local phases and orbital rotations of atoms are spontaneously ordered into a vortex array, showing evidence of the emergence of global angular momentum across the entire lattice. A phenomenological effective model is used to capture the dynamics of Bogoliubov quasi-particle excitations above the ground state, which are shown to exhibit a topological band structure. The observed bosonic phase is expected to exhibit phenomena that are conceptually distinct from, but related to, the quantum anomalous Hall effect <superscript>3-7</superscript> in electronic condensed matter.<br /> (© 2021. The Author(s).)

Details

Language :
English
ISSN :
1476-4687
Volume :
596
Issue :
7871
Database :
MEDLINE
Journal :
Nature
Publication Type :
Academic Journal
Accession number :
34381235
Full Text :
https://doi.org/10.1038/s41586-021-03702-0