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在沉降或电泳过程中带电粒子周围的厚电双层的强烈变形。

Strong Deformation of the Thick Electric Double Layer around a Charged Particle during Sedimentation or Electrophoresis.

机构信息

Department of Chemical Engineering, Carnegie Mellon University , Pittsburgh, Pennsylvania 15213, United States.

出版信息

Langmuir. 2018 Jan 23;34(3):876-885. doi: 10.1021/acs.langmuir.7b01897. Epub 2017 Aug 15.

Abstract

The deformation of the electric double layer around a charged colloidal particle during sedimentation or electrophoresis in a binary, symmetric electrolyte is studied. The surface potential of the particle is assumed to be small compared to the thermal voltage scale. Additionally, the Debye length is assumed to be large compared to the particle size. These assumptions enable a linearization of the electrokinetic equations. The particle appears as a point charge in this thick-double-layer limit; the distribution of charge in the diffuse cloud surrounding it is determined by a balance of advection due to the particle motion, Brownian diffusion of ions, and electrostatic screening of the particle by the cloud. The ability of advection to deform the charge cloud from its equilibrium state is parametrized by a Péclet number, Pe. For weak advection (Pe ≪ 1), the cloud is only slightly deformed. In contrast, the cloud can be completely stripped from the particle at Pe ≫ 1; consequently, electrokinetic effects on the particle motion vanish in this regime. Therefore, in sedimentation the drag limits to Stokes' law for an uncharged particle as Pe → ∞. Likewise, the particle velocity for electrophoresis approaches Huckel's result. The strongly deformed cloud at large Pe is predicted to generate a concomitant increase in the sedimentation field in a dilute settling suspension.

摘要

在二元对称电解质中,带电荷胶体颗粒在沉降或电泳过程中,围绕其双电层的变形进行了研究。假设颗粒的表面电势与热电压相比很小。此外,假设 Debye 长度与颗粒尺寸相比很大。这些假设使电动方程线性化。在这个厚双层极限中,颗粒表现为点电荷;包围它的扩散云中的电荷分布由颗粒运动引起的对流、离子的布朗扩散以及云中的颗粒静电屏蔽之间的平衡来决定。对流使电荷云从平衡状态变形的能力由 Peclet 数 Pe 来参数化。对于弱对流(Pe ≪ 1),云几乎没有变形。相比之下,在 Pe ≫ 1 时,云可以完全从颗粒上剥离;因此,在这个区域电动效应对颗粒运动的影响消失。因此,在沉降过程中,当 Pe → ∞ 时,阻力限制为无电荷颗粒的 Stokes 定律。同样,电泳中的颗粒速度趋近于 Huckel 的结果。大 Pe 下强烈变形的云预计会在稀沉降悬浮液中产生伴随的沉降场增加。

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