Exact dynamics of a reaction-diffusion model with spatially alternating rates

M. Mobilia, B. Schmittmann, and R. K. P. Zia
Phys. Rev. E 71, 056129 – Published 31 May 2005

Abstract

We present the exact solution for the full dynamics of a nonequilibrium spin chain and its dual reaction-diffusion model, for arbitrary initial conditions. The spin chain is driven out of equilibrium by coupling alternating spins to two thermal baths at different temperatures. In the reaction-diffusion model, this translates into spatially alternating rates for particle creation and annihilation, and even negative “temperatures” have a perfectly natural interpretation. Observables of interest include the magnetization, the particle density, and all correlation functions for both models. Two generic types of time dependence are found: if both temperatures are positive, the magnetization, density, and correlation functions decay exponentially to their steady-state values. In contrast, if one of the temperatures is negative, damped oscillations are observed in all quantities. They can be traced to a subtle competition of pair creation and annihilation on the two sublattices. We comment on the limitations of mean-field theory and propose an experimental realization of our model in certain conjugated polymers and linear chain compounds.

  • Received 21 December 2004

DOI:https://doi.org/10.1103/PhysRevE.71.056129

©2005 American Physical Society

Authors & Affiliations

M. Mobilia*, B. Schmittmann, and R. K. P. Zia

  • Center for Stochastic Processes in Science and Engineering, Department of Physics, Virginia Tech, Blacksburg, Virginia 24061-0435, USA

  • *Electronic address: mmobilia@vt.edu
  • Electronic address: schmittm@vt.edu
  • Electronic address: rkpzia@vt.edu

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Issue

Vol. 71, Iss. 5 — May 2005

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