Spin diffusion in ultracold spin-orbit coupled $^{40}$K gas
T. Yu, M. W. Wu

TL;DR
This paper analyzes steady-state spin diffusion in ultracold $^{40}$K gases with spin-orbit coupling, revealing five distinct scattering regimes and complex behaviors that challenge simple diffusion models.
Contribution
It provides a comprehensive analytical and numerical study of spin diffusion regimes in ultracold gases with spin-orbit coupling, identifying key length scales and their effects.
Findings
Five scattering regimes characterized by different length scale relations.
Rich spatial evolution behaviors of spin polarization across regimes.
Simple models are insufficient to describe the complex spin diffusion phenomena.
Abstract
We investigate the steady-state spin diffusion for ultracold spin-orbit coupled K gas by the kinetic spin Bloch equation approach both analytically and numerically. Four configurations, i.e., the spin diffusions along two specific directions with the spin polarization perpendicular (transverse configuration) and parallel (longitudinal configuration) to the effective Zeeman field are studied. It is found that the behaviors of the steady-state spin diffusion for the four configurations are very different, which are determined by three characteristic lengths: the mean free path , the Zeeman oscillation length and the spin-orbit coupling oscillation length . It is analytically revealed and numerically confirmed that by tuning the scattering strength, the system can be divided into {\it five} regimes: I, weak scattering regime ($l_{\tau}\gtrsim…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Atomic and Subatomic Physics Research · Quantum, superfluid, helium dynamics
