English

Collisional corrections to spin polarization from quantum kinetic theory using Chapman-Enskog expansion

High Energy Physics - Phenomenology 2025-03-11 v2 High Energy Physics - Theory Nuclear Theory

Abstract

We have investigated the collisional corrections to the spin polarization pseudo-vector, δPμ\delta\mathcal{P}^{\mu}, using quantum kinetic theory in Chapman-Enskog expansion. We derive the spin Boltzmann equation incorporating M{\o}ller scattering process. We further consider two distinct scenarios using hard thermal loop approximations for simplification. In scenario (I), the vector charge distribution function is treated as off-equilibrium under the validity domain of gradient expansion. Remarkably, the polarization induced by gradients of thermal chemical potential and shear viscous tensors are modified, but δP μ\delta\mathcal{P}_{\textrm{ }}^{\mu} in this scenario does not depend on the coupling constant. In scenario (II), the vector charge distribution function is assumed to be in local thermal equilibrium. Then collisional corrections δP μ\delta\mathcal{P}_{\textrm{ }}^{\mu} in this scenario are at O(22)\mathcal{O}(\hbar^{2}\partial^{2}). Additionally, we evaluate the δPμ\delta\mathcal{P}^{\mu} using relaxation time approach for comparative analysis. Our results establish the theoretical framework necessary for the future numerical investigations on the interaction corrections to spin polarization.

Keywords

Cite

@article{arxiv.2408.09877,
  title  = {Collisional corrections to spin polarization from quantum kinetic theory using Chapman-Enskog expansion},
  author = {Shuo Fang and Shi Pu},
  journal= {arXiv preprint arXiv:2408.09877},
  year   = {2025}
}

Comments

32 pages, 1 figure; version accepted for publication of PRD