250 research outputs found

    Ultra-Slow Vacancy-Mediated Tracer Diffusion in Two Dimensions: The Einstein Relation Verified

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    We study the dynamics of a charged tracer particle (TP) on a two-dimensional lattice all sites of which except one (a vacancy) are filled with identical neutral, hard-core particles. The particles move randomly by exchanging their positions with the vacancy, subject to the hard-core exclusion. In case when the charged TP experiences a bias due to external electric field E{\bf E}, (which favors its jumps in the preferential direction), we determine exactly the limiting probability distribution of the TP position in terms of appropriate scaling variables and the leading large-N (nn being the discrete time) behavior of the TP mean displacement Xˉn\bar{{\bf X}}_n; the latter is shown to obey an anomalous, logarithmic law Xˉn=α0(E)ln(n)|\bar{{\bf X}}_n| = \alpha_0(|{\bf E}|) \ln(n). On comparing our results with earlier predictions by Brummelhuis and Hilhorst (J. Stat. Phys. {\bf 53}, 249 (1988)) for the TP diffusivity DnD_n in the unbiased case, we infer that the Einstein relation μn=βDn\mu_n = \beta D_n between the TP diffusivity and the mobility μn=limE0(Xˉn/En)\mu_n = \lim_{|{\bf E}| \to 0}(|\bar{{\bf X}}_n|/| {\bf E} |n) holds in the leading in nn order, despite the fact that both DnD_n and μn\mu_n are not constant but vanish as nn \to \infty. We also generalize our approach to the situation with very small but finite vacancy concentration ρ\rho, in which case we find a ballistic-type law Xˉn=πα0(E)ρn|\bar{{\bf X}}_n| = \pi \alpha_0(|{\bf E}|) \rho n. We demonstrate that here, again, both DnD_n and μn\mu_n, calculated in the linear in ρ\rho approximation, do obey the Einstein relation.Comment: 25 pages, one figure, TeX, submitted to J. Stat. Phy

    Kinetics of active surface-mediated diffusion in spherically symmetric domains

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    We present an exact calculation of the mean first-passage time to a target on the surface of a 2D or 3D spherical domain, for a molecule alternating phases of surface diffusion on the domain boundary and phases of bulk diffusion. We generalize the results of [J. Stat. Phys. {\bf 142}, 657 (2011)] and consider a biased diffusion in a general annulus with an arbitrary number of regularly spaced targets on a partially reflecting surface. The presented approach is based on an integral equation which can be solved analytically. Numerically validated approximation schemes, which provide more tractable expressions of the mean first-passage time are also proposed. In the framework of this minimal model of surface-mediated reactions, we show analytically that the mean reaction time can be minimized as a function of the desorption rate from the surface.Comment: Published online in J. Stat. Phy
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