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March 29, 2026Journal of Applied Mechanics and Technical Physics0 citations

Electrophoresis of Highly Charged Hydrophobic Micro- and Nanoparticles

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EFE. A. FrantsEKE. N. KalaidinAKA. A. Krylov

Key Points

  • To explore the effects of high surface charge density and hydrophobic surfaces on the electrophoretic mobility of dielectric particles.
  • Conducted numerical simulations and analytical studies
  • Analyzed the mobility of hydrophobic particles under electric fields
  • Derived a formula for particle mobility based on surface properties
  • Particle velocity increases significantly in moderate electric fields
  • Surface conductivity contribution exceeds slip length effects
  • The derived formula aligns well with both analytical and numerical simulations

Abstract

Numerical simulation and analytical methods have been used to study electrophoresis of a dielectric particle having a hydrophobic surface and high surface conductivity. The results demonstrate that, in a moderate electric field and at high surface charge density, particle velocity increases and the contribution of surface conductivity considerably exceeds that of the slip length. A formula has been analytically derived for the mobility of a hydrophobic particle, which comprises three terms: (1) the linear term in the Helmholtz–Smoluchowski well-known relation, (2) a term representing the contribution of the hydrophobic surface, and (3) the surface conductivity contribution due to the high surface charge density. We present results for a small and a large slip length, corresponding to micro- and nanoparticles. Comparison of the numerical and analytical solutions we obtained demonstrates good agreement between the two approaches used.

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Cite This Study

Frants et al. (2025) studied this question.

synapsesocial.com/papers/69c8c115de0f0f753b39bac9https://doi.org/10.1134/s0021894425700634
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Electrophoresis of microparticle with hydrophobic surface in strong electric field2024
  2. 2Electrophoresis analysis of a hydrophobic spherical particle in a micropolar electrolyte solution2024
  3. 3Nonlinear Electrophoresis of a Charged Dielectric Particle in Polar and Nonpolar Media: The Role of the Electrohydrodynamic Coupling Parameter2026
  4. 4Electrophoretic Mobility of Nanoparticles in Water2024 · 5 citations
  5. 5Predicting the Electrophoretic Mobility of Charged Particles in an Aqueous Medium2024 · 1 citations