Large amplitude spin waves in ultra-cold gases
J.N. Fuchs, D.M. Gangardt, F. Laloe

TL;DR
This paper develops and compares theoretical methods for describing large amplitude spin waves in ultra-cold gases, highlighting their non-hydrodynamic behavior and decay dynamics through numerical simulations.
Contribution
It introduces a comprehensive comparison of kinetic equation derivation methods and applies them to analyze non-hydrodynamic spin wave phenomena in ultra-cold gases.
Findings
Different derivations yield similar drift terms but differ in collision integrals.
Numerical simulations show strongly non-hydrodynamic spin wave behavior.
Decay processes and decoherence are discussed in the context of relaxation to equilibrium.
Abstract
We discuss the theory of spin waves in non-degenerate ultra-cold gases, and compare various methods which can be used to obtain appropriate kinetic equations. We then study non-hydrodynamic situations, where the amplitude of spin waves is sufficiently large to bring the system far from local equilibrium. In the first part of the article, we compare two general methods which can be used to derive a kinetic equation for a dilute gas of atoms (bosons or fermions) with two internal states (treated as a pseudo-spin 1/2). The collisional methods are in the spirit of Boltzmann's original derivation of his kinetic equation where, at each point of space, the effects of all sorts of possible binary collisions are added. We discuss two different versions of collisional methods, the Yvon-Snider approach and the S matrix approach. The second method uses the notion of mean field, which modifies the…
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