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arXiv · hep-ph/9603384

Motion of Chern-Simons Number at High Temperature Under a Chemical Potential

Abstract

I investigate the evolution of finite temperature, classical Yang-Mills field equations under the influence of a chemical potential for Chern Simons number $N_{CS}$. The rate of $N_{CS}$ diffusion, $Γ_d$, and the linear response of $N_{CS}$ to a chemical potential, $Γ_μ$, are both computed; the relation $Γ_d = 2 Γ_μ$ is satisfied numerically and the results agree with the recent measurement of $Γ_d$ by Ambjorn and Krasnitz. The response of $N_{CS}$ under chemical potential remains linear at least to $μ= 6 T$, which is impossible if there is a free energy barrier to the motion of $N_{CS}$. The possibility that the result depends on lattice artefacts via hard thermal loops is investigated by changing the lattice action and by examining elongated rectangular lattices; provided that the lattice is fine enough, the result is weakly if at all dependent on the specifics of the cutoff. I also compare SU(2) with SU(3) and find $Γ_{\rm SU(3)} \sim 7 (α_s/α_w)^4 Γ_{\rm SU(2)}$.

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BibTeXRIS

Guy D. Moore. 1996-07-01. Motion of Chern-Simons Number at High Temperature Under a Chemical Potential. https://doi.org/10.1016/s0550-3213(96)00445-2

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