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Dynamic instability transitions in 1D driven diffusive flow with nonlocal hopping

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arxiv cond-mat/0703604 v2 pith:URAHY3N3 submitted 2007-03-23 cond-mat.stat-mech

Dynamic instability transitions in 1D driven diffusive flow with nonlocal hopping

classification cond-mat.stat-mech
keywords phaseinstabilitynonlocalordertransitionclustercurrentdriven
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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One-dimensional directed driven stochastic flow with competing nonlocal and local hopping events has an instability threshold from a populated phase into an empty-road (ER) phase. We implement this in the context of the asymmetric exclusion process. The nonlocal skids promote strong clustering in the stationary populated phase. Such clusters drive the dynamic phase transition and determine its scaling properties. We numerically establish that the instability transition into the ER phase is second order in the regime where the entry point reservoir controls the current and first order in the regime where the bulk is in control. The first order transition originates from a turn-about of the cluster drift velocity. At the critical line, the current remains analytic, the road density vanishes linearly, and fluctuations scale as uncorrelated noise. A self-consistent cluster dynamics analysis explains why these scaling properties remain that simple.

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