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Ergodicity of a Single Particle Confined in a Nanopore

机译:纳米孔中单个颗粒的遍历性

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We analyze the dynamics of a gas particle moving through a nanopore of adjustable width with particular emphasis on ergodicity. We give a measure of the portion of phase space that is characterized by quasiperiodic trajectories which break ergodicity. The interactions between particle and wall atoms are mediated by a Lennard-Jones potential, so that an analytical treatment of the dynamics is not feasible, but making the system more physically realistic. In view of recent studies, which proved non-ergodicity for systems with scatterers interacting via smooth potentials, we find that the non-ergodic component of the phase space for energy levels typical of experiments, is surprisingly small, i. e. we conclude that the ergodic hypothesis is a reasonable approximation even for a single particle trapped in a nanopore. Due to the numerical scope of this work, our focus will be the onset of ergodic behavior which is evident on time scales accessible to simulations and experimental observations rather than ergodicity in the infinite time limit.
机译:我们分析了气体颗粒通过宽度可调的纳米孔的动力学,特别强调了遍历性。我们给出了以准周期轨迹打破遍历性为特征的相空间部分的度量。 Lennard-Jones势能介导粒子与壁原子之间的相互作用,因此对动力学进行分析处理是不可行的,但是会使系统在物理上更加真实。鉴于最近的研究证明了具有散射体通过平滑势相互作用的系统的非遍历性,我们发现相空间的非遍历分量对于典型的实验能级来说非常小,即。 e。我们得出的结论是,即使对于陷在纳米孔中的单个粒子,遍历假设也是一个合理的近似值。由于这项工作的数值范围,我们的重点将是遍历行为的发作,这在可用于模拟和实验观察的时间尺度上是显而易见的,而不是在无限时限内的遍历行为。

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