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Subdiffusion via dynamical localization induced by thermal equilibrium fluctuations

机译:由热平衡波动引起的动态局部扩散

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摘要

We reveal the mechanism of subdiffusion which emerges in a straightforward, one dimensional classical nonequilibrium dynamics of a Brownian ratchet driven by both a time-periodic force and Gaussian white noise. In a tailored parameter set for which the deterministic counterpart is in a non-chaotic regime, subdiffusion is a long-living transient whose lifetime can be many, many orders of magnitude larger than characteristic time scales of the setup thus being amenable to experimental observations. As a reason for this subdiffusive behaviour in the coordinate space we identify thermal noise induced dynamical localization in the velocity (momentum) space. This novel idea is distinct from existing knowledge and has never been reported for any classical or quantum system. It suggests reconsideration of generally accepted opinion that subdiffusion is due to broad distributions or strong correlations which reflect disorder, trapping, viscoelasticity of the medium or geometrical constraints.
机译:我们揭示了由时间周期力和高斯白噪声共同驱动的布朗棘轮的简单,一维经典非平衡动力学中出现的再扩散机理。在确定性对应物处于非混沌状态的量身定制的参数集中,子扩散是一个长寿命的瞬变,其寿命可能比设置的特征时间标度长很多很多数量级,因此可以进行实验观察。作为坐标空间中这种次扩散行为的原因,我们确定了热噪声在速度(动量)空间中引起的动态局部化。这个新颖的想法与现有知识不同,从未针对任何经典或量子系统进行过报道。它建议重新考虑普遍接受的观点,即子扩散是由于分布广泛或相关性强,反映了无序,陷井,介质的粘弹性或几何约束。

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