Majee Partha Sarathi, Bhattacharyya Somnath, Gopmandal Partha Pratim, Ohshima Hiroyuki
Department of Mathematics, Indian Institute of Technology Kharagpur, Kharagpur, West Bengal, India.
Department of Mathematics, National Institute of Technology Patna, Patna, Bihar, India.
Electrophoresis. 2018 Mar;39(5-6):794-806. doi: 10.1002/elps.201700294. Epub 2017 Oct 17.
A theoretical study on the gel electrophoresis of a charged particle incorporating the effects of dielectric polarization and surface hydrophobicity at the particle-liquid interface is made. A simplified model based on the weak applied field and low charge density assumption is also presented and compared with the full numerical model for a nonpolarizable particle to elucidate the nonlinear effects such as double layer polarization and relaxation as well as surface conduction. The main motivation of this study is to analyze the electrophoresis of the surface functionalized nanoparticle with tunable hydrophobicity or charged fluid drop in gel medium by considering the electrokinetic effects and hydrodynamic interactions between the particle and the gel medium. An effective medium approach, in which the transport in the electrolyte-saturated hydrogel medium is governed by the Brinkman equation, is adopted in the present analysis. The governing electrokinetic equations based on the conservation principles are solved numerically. The Navier-slip boundary condition along with the continuity condition of dielectric displacement are imposed on the surface of the hydrophobic polarizable particle. The impact of the slip length on the electrophoresis is profound for a thinner Debye layer, however, surface conduction effect also becomes significant for a hydrophobic particle. Impact of hydrophobicity and relaxation effects are higher for a larger particle. Dielectric polarization creates a reduction in its electrophoretic propulsion and has negligible impact at the thinner Debye length as well as lower gel screening length.
对带电粒子在颗粒 - 液体界面处考虑介电极化和表面疏水性影响的凝胶电泳进行了理论研究。还提出了一个基于弱外加场和低电荷密度假设的简化模型,并与不可极化颗粒的全数值模型进行比较,以阐明诸如双层极化和弛豫以及表面传导等非线性效应。本研究的主要动机是通过考虑颗粒与凝胶介质之间的电动效应和流体动力学相互作用,分析具有可调疏水性的表面功能化纳米颗粒或凝胶介质中带电液滴的电泳。本分析采用有效介质方法,其中电解质饱和水凝胶介质中的传输由布林克曼方程控制。基于守恒原理的控制电动方程通过数值求解。在疏水性可极化颗粒表面施加纳维滑移边界条件以及电介质位移的连续性条件。对于较薄的德拜层,滑移长度对电泳的影响很大,然而,表面传导效应对于疏水性颗粒也变得很显著。对于较大的颗粒,疏水性和弛豫效应的影响更大。介电极化会降低其电泳推进力,并且在较薄的德拜长度以及较低的凝胶屏蔽长度下影响可忽略不计。