Exact Large Deviation Functional of a Stationary Open Driven Diffusive System: The Asymmetric Exclusion Process

dc.creatorDerrida, B.
dc.creatorLebowitz, J. L.
dc.creatorSpeer, E. R.
dc.date2002-05-16
dc.date.accessioned2026-07-07T02:45:29Z
dc.date.available2026-07-07T02:45:29Z
dc.descriptionWe consider the asymmetric exclusion process (ASEP) in one dimension on sites $i = 1,..., N$, in contact at sites $i=1$ and $i=N$ with infinite particle reservoirs at densities $ρ_a$ and $ρ_b$. As $ρ_a$ and $ρ_b$ are varied, the typical macroscopic steady state density profile $\bar ρ(x)$, $x\in[a,b]$, obtained in the limit $N=L(b-a)\to\infty$, exhibits shocks and phase transitions. Here we derive an exact asymptotic expression for the probability of observing an arbitrary macroscopic profile $ρ(x)$: $P_N(\{ρ(x)\})\sim\exp[-L{\cal F}_{[a,b]}(\{ρ(x)\});ρ_a,ρ_b]$, so that ${\cal F}$ is the large deviation functional, a quantity similar to the free energy of equilibrium systems. We find, as in the symmetric, purely diffusive case $q=1$ (treated in an earlier work), that $\cal F$ is in general a non-local functional of $ρ(x)$. Unlike the symmetric case, however, the asymmetric case exhibits ranges of the parameters for which ${\cal F}(\{ρ(x)\})$ is not convex and others for which ${\cal F}(\{ρ(x)\})$ has discontinuities in its second derivatives at $ρ(x) = \barρ(x)$; the fluctuations near $\barρ(x)$ are then non-Gaussian and cannot be calculated from the large deviation function.
dc.descriptionLatex, one PicTeX figure in a separate file
dc.identifierhttps://arxiv.org/abs/cond-mat/0205353
dc.identifierhttp://arxiv.org/abs/cond-mat/0205353
dc.identifier.urihttp://salesiana.dossiersoluciones.com/handle/123456789/19315
dc.subjectStatistical Mechanics
dc.titleExact Large Deviation Functional of a Stationary Open Driven Diffusive System: The Asymmetric Exclusion Process
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