Mean-field spin-oscillation dynamics beyond the single-mode approximation for a harmonically trapped spin-1 Bose-Einstein condensate
Jianwen Jie, Q. Guan, S. Zhong, A. Schwettmann, D. Blume

TL;DR
This paper investigates the limitations of the single-mode approximation in describing spin dynamics of a harmonically trapped spin-1 Bose-Einstein condensate, revealing complex behaviors beyond previous simplified models.
Contribution
It develops a semi-quantitative condition for when mean-field corrections are necessary, improving understanding of spinor BEC dynamics beyond the single-mode approximation.
Findings
Single-mode approximation can miss intricate spin and spatial dynamics.
Derived a condition for the relevance of mean-field induced corrections.
Results have implications for experimental studies of spinor BECs.
Abstract
Compared to single-component Bose-Einstein condensates, spinor Bose-Einstein condensates display much richer dynamics. In addition to density oscillations, spinor Bose-Einstein condensates exhibit intriguing spin dynamics that is associated with population transfer between different hyperfine components. This work analyzes the validity of the widely employed single-mode approximation when describing the spin dynamics in response to a quench of the system Hamiltonian. The single-mode approximation assumes that the different hyperfine states all share the same time-independent spatial mode. This implies that the resulting spin Hamiltonian only depends on the spin interaction strength and not on the density interaction strength. Taking the spinor sodium Bose-Einstein condensate in the hyperfine manifold as an example and working within the mean-field theory framework, it is found…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Strong Light-Matter Interactions · Atomic and Subatomic Physics Research
