English

Quantum Boltzmann equation for spin-dependent reactions in the kinetic regime

Mathematical Physics 2015-03-09 v2 math.MP Quantum Physics

Abstract

We derive and analyze an effective quantum Boltzmann equation in the kinetic regime for the interactions of four distinguishable types of fermionic spin-12\frac{1}{2} particles, starting from a general quantum field Hamiltonian. Each particle type is described by a time-dependent, 2×22 \times 2 spin-density ("Wigner") matrix. We show that density and energy conservation laws as well as the H-theorem hold, and enumerate additional conservation laws depending on the interaction. The conserved quantities characterize the tt \to \infty thermal (Fermi-Dirac) equilibrium state. We illustrate the approach to equilibrium by numerical simulations in the isotropic three-dimensional setting.

Keywords

Cite

@article{arxiv.1411.2576,
  title  = {Quantum Boltzmann equation for spin-dependent reactions in the kinetic regime},
  author = {Martin L. R. Fürst and Markus Kotulla and Christian B. Mendl and Herbert Spohn},
  journal= {arXiv preprint arXiv:1411.2576},
  year   = {2015}
}

Comments

18 pages, 7 figures