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arXiv · 1710.09279

Anomalous diffusion due to the non-Markovian process of the dust particle velocity in complex plasmas

Abstract

In this work, the motion of a dust particle under the influence of the random force due to dust charge fluctuations is considered as a non-Markovian stochastic process. Memory effects in the velocity process of the dust particle are studied. A model is developed based on the fractional Langevin equation for the motion of the dust grain. The fluctuation-dissipation theorem for the dust grain is derived from this equation. The mean-square displacement and the velocity autocorrelation function of the dust particle are obtained in terms of the Mittag-Leffler functions. Their asymptotic behavior and the dust particle temperature due to charge fluctuations are studied in the long-time limit. As an interesting result, it is found that the presence of memory effects in the velocity process of the dust particle as a non-Markovian process can cause an anomalous diffusion in dusty plasmas. In this case, the velocity autocorrelation function of the dust particle has a power-law decay like $t^{-α-2}$, where the exponent $α$ take values $0<α<1$.

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Zahra Ghannad, Hossein Hakimi Pajouh. 2017-10-24. Anomalous diffusion due to the non-Markovian process of the dust particle velocity in complex plasmas. https://doi.org/10.1016/j.physleta.2017.10.026

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