4.4 Article

Effective quantum kinetic theory for spin transport of fermions with collsional effects

期刊

JOURNAL OF HIGH ENERGY PHYSICS
卷 -, 期 7, 页码 -

出版社

SPRINGER
DOI: 10.1007/JHEP07(2020)070

关键词

Heavy Ion Phenomenology; QCD Phenomenology

资金

  1. Japan Society of Promotion of Science (JSPS) [15H03652, 16K17716, 17H06462, 20K03948]
  2. RIKEN iTHES Project
  3. iTHEMS Program
  4. Yukawa International Program for Quark-hadron Sciences (YIPQS)
  5. Keio Institute of Pure and Applied Sciences (KiPAS) project in Keio University
  6. JSPS KAKENHI [20K14470]
  7. molecular-type Yukawa Institute for Theoretical Physics (YITP) workshopQuantum kinetic theories in magnetic and vortical fields [YITP-T-19-06]
  8. Grants-in-Aid for Scientific Research [15H03652, 16K17716, 20K14470, 20K03948] Funding Source: KAKEN

向作者/读者索取更多资源

We systematically derive the collision term for the axial kinetic theory, a quantum kinetic theory delineating the coupled dynamics of the vector/axial charges and spin transport carried by the massive spin-1/2 fermions traversing a medium. We employ the Wigner-function approach and propose a consistent power-counting scheme where the axial-charge distribution function, a non-conserved quantity for massive particles, is accounted as the first-order quantity in the expansion, while the vector-charge distribution function the zeroth-order quantity. This specific power-counting scheme allows us to organize a reduced expansion for the collision term and to formally identity the spin- diffusion effect and the spin-polarization effect at the same order. We confirm that the obtained collisional axial kinetic theory smoothly reduces to the chiral kinetic theory in the massless limit, serving as a consistency check. In the absence of electromagnetic fields, we further present the simplified axial kinetic equations suitable for tracking dynamical spin polarization of heavy and light fermions, respectively. As an application to the weakly coupled quark-gluon plasma at high temperature, we compute the spin-diffusion term for massive quarks within the leading-log approximation. The formal expression for the first- order terms provides a path toward evaluation of the spin polarization effect in quantum chromodynamics.

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