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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Electrophoresis of a Colloidal Sphere in a Spherical Cavity with Arbitrary Zeta Potential Distributions
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Electrophoresis of a Colloidal Sphere in a Spherical Cavity with Arbitrary Zeta Potential Distributions

机译:具有任意Zeta电位分布的球腔中的胶体球电泳

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摘要

An analytical study is presented for the quasi-steady electrophoretic motion of a dielectric sphere situated at the center of a spherical cavity when the surface potentials are arbitrarily nonuniform. The applied electric field is constant, and the electric double layers adjacent to the solid surfaces are assumed to be much thinner than the particle radius and the gap width between the surfaces. The presence of the cavity wall causes three basic effects on the particle velocity: (1) the local electric field on the particle surface is enhanced or reduced by the wall; (2) the wall increases the viscous retardation of the moving particle; and (3) a circulating electroosmotic flow of the suspending fluid exists because of the interaction between the electric field and the charged wall. The Laplace and Stokes equations are solved analytically for the electric potential and velocity fields, respectively, in the fluid phase, and explicit formulas for the electrophoretic and angular velocities of the particle are obtained. To apply these formulas, one has to calculate only the monopole, dipole, and quadrupole moments of the zeta-potential distributions at the particle and cavity surfaces. It is found that the contribution from the electroosmotic flow developing from the interaction of the imposed electric field with the thin double layer adjacent to the cavity wall and the contribution from the wall-corrected electrophoretic driving force to the particle velocities can be superimposed as a result of the linearity of the problem.
机译:当表面电势任意不均匀时,对位于球形腔中心的介电球的准稳态电泳运动进行了分析研究。所施加的电场是恒定的,并且假定与固体表面相邻的双电层比粒子半径和表面之间的间隙宽度薄得多。腔壁的存在对粒子速度产生了三个基本影响:(1)壁会增强或减小粒子表面上的局部电场; (2)壁增加了运动颗粒的粘性滞后; (3)由于电场和带电壁之间的相互作用,存在悬浮液的循环电渗流。分别分析了液相中的电势和速度场的Laplace和Stokes方程,并获得了粒子电泳和角速度的明确公式。要应用这些公式,必须只计算粒子和腔体表面的zeta势分布的单极矩,偶极矩和四极矩。结果发现,可以叠加由施加的电场与邻近腔壁的薄双层相互作用产生的电渗流的贡献和由壁校正的电泳驱动力对颗粒速度的贡献的叠加。问题的线性。

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