English

Fluctuation-dissipation relation for systems with spatially varying friction

Statistical Mechanics 2015-06-18 v3 Soft Condensed Matter Computational Physics

Abstract

When a particle diffuses in a medium with spatially dependent friction coefficient α(r)\alpha(r) at constant temperature TT, it drifts toward the low friction end of the system even in the absence of any real physical force ff. This phenomenon, which has been previously studied in the context of non-inertial Brownian dynamics, is termed "spurious drift", although the drift is real and stems from an inertial effect taking place at the short temporal scales. Here, we study the diffusion of particles in inhomogeneous media within the framework of the inertial Langevin equation. We demonstrate that the quantity which characterizes the dynamics with non-uniform α(r)\alpha(r) is not the displacement of the particle Δr=rr0\Delta r=r-r^0 (where r0r^0 is the initial position), but rather ΔA(r)=A(r)A(r0)\Delta A(r)=A(r)-A(r^0), where A(r)A(r) is the primitive function of α(r)\alpha(r). We derive expressions relating the mean and variance of ΔA\Delta A to ff, TT, and the duration of the dynamics Δt\Delta t. For a constant friction coefficient α(r)=α\alpha(r)=\alpha, these expressions reduce to the well known forms of the force-drift and fluctuation-dissipation relations. We introduce a very accurate method for Langevin dynamics simulations in systems with spatially varying α(r)\alpha(r), and use the method to validate the newly derived expressions.

Keywords

Cite

@article{arxiv.1402.4598,
  title  = {Fluctuation-dissipation relation for systems with spatially varying friction},
  author = {Oded Farago and Niels Grønbech-Jensen},
  journal= {arXiv preprint arXiv:1402.4598},
  year   = {2015}
}

Comments

11 pages, 6 figures. Minor revisions to previous version. Accepted for publication in J. Stat. Phys

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