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首页> 外文期刊>The European Physical Journal Special Topics >Normal and anomalous diffusion of non-interacting particles in linear nanopores
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Normal and anomalous diffusion of non-interacting particles in linear nanopores

机译:非相互作用粒子在线性纳米孔中的正常和反常扩散

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摘要

The diffusion of gas molecules in pores is determined by the collisions between the molecules as well as by the collisions of the molecules with the pore walls. In many applications the so-called Knudsen regime is of particular interest. In this regime the collisions of the molecules with the pore walls play the crucial role, while the inter-molecular collisions can be neglected. Here we study the influence of surface roughness on the coefficients of self (or tracer) diffusion and transport diffusion. Considering the first four iterations of a generalised fractal Koch surface, we construct pore models of different roughness. For these model pores we have performed detailed simulations of both diffusion coefficients using a cube-based algorithm. The molecular trajectories can be mapped onto Lévy walks to determine the diffusion properties. In linear two-dimensional (2d) channels we observe anomalous diffusion, which can also be induced in smooth and rough three-dimensional (3d) pores by anomalous reflection laws. Normal diffusion is found in convoluted 2d pores and in all 3d pores when a diffuse reflection law is applied.
机译:气体分子在孔中的扩散取决于分子之间的碰撞以及分子与孔壁的碰撞。在许多应用中,特别是所谓的克努森政权。在这种情况下,分子与孔壁的碰撞起着至关重要的作用,而分子间的碰撞可以忽略不计。在这里,我们研究了表面粗糙度对自我(或示踪剂)扩散和传输扩散系数的影响。考虑到广义分形科赫表面的前四个迭代,我们构建了具有不同粗糙度的孔模型。对于这些模型孔,我们已经使用基于立方体的算法对两个扩散系数进行了详细的模拟。可以将分子轨迹映射到Lévy走道上以确定扩散特性。在线性二维(2d)通道中,我们观察到异常扩散,也可以通过异常反射定律在光滑粗糙的三维(3d)孔中诱发异常扩散。当应用漫反射定律时,在回旋的2d孔和所有3d孔中都发现了正常扩散。

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  • 来源
    《The European Physical Journal Special Topics》 |2008年第1期|109-120|共12页
  • 作者单位

    Universität Leipzig Experimentelle Physik I Linnéstraße 5 04103 Leipzig Germany;

    Universität Giessen Theoretische Physik III Heinrich-Buff-Ring 16 35392 Giessen Germany;

    Universität Leipzig Experimentelle Physik I Linnéstraße 5 04103 Leipzig Germany;

    TU Delft DelftChemTech Julianalaan 136 2628 BL Delft The Netherlands;

    TU Delft DelftChemTech Julianalaan 136 2628 BL Delft The Netherlands;

    Universität Giessen Theoretische Physik III Heinrich-Buff-Ring 16 35392 Giessen Germany;

    Universität Leipzig Experimentelle Physik I Linnéstraße 5 04103 Leipzig Germany;

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