arXiv · cond-mat/0012068
Temporal Correlations and Persistence in the Kinetic Ising Model: the Role of Temperature
Abstract
We study the statistical properties of the sum $S_t=\int_{0}^{t}dt' σ_{t'}$, that is the difference of time spent positive or negative by the spin $σ_{t}$, located at a given site of a $D$-dimensional Ising model evolving under Glauber dynamics from a random initial configuration. We investigate the distribution of $S_{t}$ and the first-passage statistics (persistence) of this quantity. We discuss successively the three regimes of high temperature ($T>T_{c}$), criticality ($T=T_c$), and low temperature ($T<T_{c}$). We discuss in particular the question of the temperature dependence of the persistence exponent $θ$, as well as that of the spectrum of exponents $θ(x)$, in the low temperature phase. The probability that the temporal mean $S_t/t$ was always larger than the equilibrium magnetization is found to decay as $t^{-θ-\frac12}$. This yields a numerical determination of the persistence exponent $θ$ in the whole low temperature phase, in two dimensions, and above the roughening transition, in the low-temperature phase of the three-dimensional Ising model.
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J. -M. Drouffe, C. Godreche. 2000-12-06. Temporal Correlations and Persistence in the Kinetic Ising Model: the Role of Temperature. https://doi.org/10.1007/s100510170277
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