Vortex Dynamics in a Spin-Orbit Coupled Bose-Einstein Condensate
Alexander L. Fetter

TL;DR
This paper explores the unique vortex dynamics in a two-component spin-orbit coupled Bose-Einstein condensate, proposing methods for vortex creation and predicting distinctive behaviors based on circulation configurations.
Contribution
It introduces the study of vortex dynamics in spin-orbit coupled BECs, including vortex creation methods and the prediction of novel vortex behaviors.
Findings
Uniform precession of composite vortices with same circulation
Fraction of vortices with mixed circulation leave the condensate
Identification of half-quantum vortex behavior
Abstract
Vortices in a one-component dilute atomic ultracold Bose-Einstein condensate (BEC) usually arise as a response to externally driven rotation. Apart from a few special situations, these vortices are singly quantized with unit circulation. Recently, the NIST group has constructed a two-component BEC with a spin-orbit coupled Hamiltonian involving Pauli matrices, and I here study the dynamics of a two-component vortex in such a spin-orbit coupled condensate. These spin-orbit coupled BECs use an applied magnetic field to split the hyperfine levels. Hence they rely on a focused laser beam to trap the atoms. In addition, two Raman laser beams create an effective (or synthetic) gauge potential. The resulting spin-orbit Hamiltonian is discussed in some detail. The various laser beams are fixed in the laboratory, so that it is not feasible to nucleate a vortex by an applied rotation that would…
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