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Exact two-time correlation and response functions in the one-dimensional coagulation-diffusion process by the empty-interval-particle method

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arxiv 1012.4724 v1 pith:EHTW35TD submitted 2010-12-21 cond-mat.stat-mech math-phmath.MPphysics.chem-ph

classification cond-mat.stat-mechmath-phmath.MPphysics.chem-ph
keywords coagulation-diffusionone-dimensionalprocesstwo-timecorrelationderivedempty-interval-particleexact
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The one-dimensional coagulation-diffusion process describes the strongly fluctuating dynamics of particles, freely hopping between the nearest-neighbour sites of a chain such that one of them disappears with probability 1 if two particles meet. The exact two-time correlation and response function in the one-dimensional coagulation-diffusion process are derived from the empty-interval-particle method. The main quantity is the conditional probability of finding an empty interval of n consecutive sites, if at distance d a site is occupied by a particle. Closed equations of motion are derived such that the probabilities needed for the calculation of correlators and responses, respectively, are distinguished by different initial and boundary conditions. In this way, the dynamical scaling of these two-time observables is analysed in the longtime ageing regime. A new generalised fluctuation-dissipation ratio with an universal and finite limit is proposed.

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    A single time-dependent symmetry transformation is claimed to explain the known scaling phenomenology of physical ageing and to predict new finite-size plateau scalings.

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