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Transient anomalous diffusion in periodic systems: ergodicity, symmetry breaking and velocity relaxation

机译:周期系统中的瞬态异常扩散:ergodicity,对称性断裂和速度松弛

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We study far from equilibrium transport of a periodically driven inertial Brownian particle moving in a periodic potential. As detected for a SQUID ratchet dynamics, the mean square deviation of the particle position from its average may involve three distinct intermediate, although extended diffusive regimes: initially as superdiffusion, followed by subdiffusion and finally, normal diffusion in the asymptotic long time limit. Even though these anomalies are transient effects, their lifetime can be many, many orders of magnitude longer than the characteristic time scale of the setup and turns out to be extraordinarily sensitive to the system parameters like temperature or the potential asymmetry. In the paper we reveal mechanisms of diffusion anomalies related to ergodicity of the system, symmetry breaking of the periodic potential and ultraslow relaxation of the particle velocity towards its steady state. Similar sequences of the diffusive behaviours could be detected in various systems including, among others, colloidal particles in random potentials, glass forming liquids and granular gases.
机译:我们研究了定期驱动的惯性褐色颗粒的平衡传输,在周期性潜力中移动。如检测到鱿鱼棘轮动力学,粒子位置从其平均值的平均平方偏差可能涉及三个不同的中间体,尽管延长的漫射制度:最初作为超拐度,其次是偏差,最后,在渐近长时限内正常扩散。尽管这些异常是瞬态效果,但它们的寿命可以很多,比设置的特征时间尺度长,并且结果对系统参数非常敏感,如温度或潜在的不对称。在本文中,我们揭示了与系统的遍及性相关的扩散异常机制,对称性破坏周期性潜力和超声弛豫朝向其稳态的粒度。在各种系统中可以检测到类似的衍射行为的序列,其中包括随机电位,玻璃形成液体和颗粒气体中的胶体颗粒。

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