English

Diffusion, Long-Time Tails, and Localization in Classical and Quantum Lorentz Models: A Unifying Hydrodynamic Approach

Disordered Systems and Neural Networks 2024-11-14 v2

Abstract

Long-time tails, or algebraic decay of time-correlation functions, have long been known to exist both in many-body systems and in models of non-interacting particles in the presence of quenched disorder that are often referred to as Lorentz models. In the latter, they have been studied extensively by a wide variety of methods, the best known example being what is known as weak-localization effects in disordered systems of non-interacting electrons. This paper provides a unifying, and very simple, approach to all of these effects. We show that simple modifications of the diffusion equation due to either a random diffusion coefficient, or a random scattering potential, accounts for both the decay exponents and the prefactors of the leading long-time tails in the velocity autocorrelation functions of both classical and quantum Lorentz models.

Keywords

Cite

@article{arxiv.2409.08123,
  title  = {Diffusion, Long-Time Tails, and Localization in Classical and Quantum Lorentz Models: A Unifying Hydrodynamic Approach},
  author = {T. R. Kirkpatrick and D. Belitz},
  journal= {arXiv preprint arXiv:2409.08123},
  year   = {2024}
}

Comments

16pp, 3 figs

R2 v1 2026-06-28T18:42:37.621Z