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arXiv · cond-mat/9607030

Exponents appearing in heterogeneous reaction-diffusion models in one dimension

Abstract

We study the following 1D two-species reaction diffusion model : there is a small concentration of B-particles with diffusion constant $D_B$ in an homogenous background of W-particles with diffusion constant $D_W$; two W-particles of the majority species either coagulate ($W+W \longrightarrow W$) or annihilate ($W+W \longrightarrow \emptyset$) with the respective probabilities $ p_c=(q-2)/(q-1) $ and $p_a=1/(q-1)$; a B-particle and a W-particle annihilate ($W+B \longrightarrow \emptyset$) with probability 1. The exponent $θ(q,λ=D_B/D_W)$ describing the asymptotic time decay of the minority B-species concentration can be viewed as a generalization of the exponent of persistent spins in the zero-temperature Glauber dynamics of the 1D $q$-state Potts model starting from a random initial condition : the W-particles represent domain walls, and the exponent $θ(q,λ)$ characterizes the time decay of the probability that a diffusive "spectator" does not meet a domain wall up to time $t$. We extend the methods introduced by Derrida, Hakim and Pasquier ({\em Phys. Rev. Lett.} {\bf 75} 751 (1995); Saclay preprint T96/013, to appear in {\em J. Stat. Phys.} (1996)) for the problem of persistent spins, to compute the exponent $θ(q,λ)$ in perturbation at first order in $(q-1)$ for arbitrary $λ$ and at first order in $λ$ for arbitrary $q$.

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BibTeXRIS

Cécile Monthus. 1996-07-04. Exponents appearing in heterogeneous reaction-diffusion models in one dimension. https://doi.org/10.1103/physreve.54.4844

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