论文标题

在随机洛伦兹气体环境中限制扩散

Confined diffusion in a random Lorentz gas environment

论文作者

Khatri, Narender, Burada, P. S.

论文摘要

我们研究了充满冰冻障碍物的二维密闭几何形状中有偏见的布朗颗粒的扩散行为。研究了这些颗粒的传输特性,以障碍物密度$η$和缩放参数$ f $的各种值,这是粒子与可用的热能的比率。我们表明,当热波动在外部力量上占主导地位时,即小$ f $制度时,当系统以临界障碍物密度$η_c\约1.2 $渗透时,颗粒会被困在给定的环境中。但是,随着$ f $的增加,我们观察到粒子捕获发生在$η_c$之前。特别是,我们发现$η$和$ f $之间的关系,该关系提供了最低$η$的估计,直至关键缩放参数$ f_c $,超过该fick-jacobs描述无效。对于各种强度的$ f $和$η$,解释了非线性移动性的非单调行为,异常扩散以及大大增强的有效扩散系数。同样,有趣的是,观察到颗粒表现出不同种类的扩散行为,即延伸,正常扩散和超扩散。这些发现是对被限制和随机的洛伦兹气体环境真正的真正的发现,可用于理解小颗粒或分子在分子筛子和多孔介质等系统中的运输,这些系统具有复杂的冰冻障碍物的异质环境。

We study the diffusive behavior of biased Brownian particles in a two dimensional confined geometry filled with the freezing obstacles. The transport properties of these particles are investigated for various values of the obstacles density $η$ and the scaling parameter $f$, which is the ratio of work done to the particles to available thermal energy. We show that, when the thermal fluctuations dominate over the external force, i.e., small $f$ regime, particles get trapped in the given environment when the system percolates at the critical obstacles density $η_c \approx 1.2$. However, as $f$ increases, we observe that particles trapping occurs prior to $η_c$. In particular, we find a relation between $η$ and $f$ which provides an estimate of the minimum $η$ up to a critical scaling parameter $f_c$ beyond which the Fick-Jacobs description is invalid. Prominent transport features like nonmonotonic behavior of the nonlinear mobility, anomalous diffusion, and greatly enhanced effective diffusion coefficient are explained for various strengths of $f$ and $η$. Also, it is interesting to observe that particles exhibit different kinds of diffusive behaviors, i.e., subdiffusion, normal diffusion, and superdiffusion. These findings, which are genuine to the confined and random Lorentz gas environment, can be useful to understand the transport of small particles or molecules in systems such as molecular sieves and porous media which have a complex heterogeneous environment of the freezing obstacles.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源