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Anisotropic colloidal interactions & assembly in AC electric fields

Rachel S. Hendley, Isaac Torres‐Díaz, Michael A. Bevan

2021Soft Matter21 citationsDOIOpen Access PDF

Abstract

We match experimental and simulated configurations of anisotropic epoxy colloidal particles in high frequency AC electric fields by identifying analytical potentials for dipole-field and dipole-dipole interactions. We report an inverse Monte Carlo simulation algorithm to determine optimal fits of analytical potentials by matching simulated and experimental distribution functions for non-uniform liquid, liquid crystal, and crystal microstructures in varying amplitude electric fields. Two potentials that include accurate particle volume and dimensions along with a concentration dependent prefactor quantitatively capture experimental observations. At low concentrations, an effective ellipsoidal point dipole potential works well, whereas a novel stretched point dipole potential is found to be suitable at all concentrations, field amplitudes, and degrees of ordering. The simplicity, accuracy, and adjustability of the stretched point dipole potential suggest it can be applied to model field mediated microstructures and assembly of systematically varying anisotropic particle shapes.

Topics & Concepts

DipoleElectric fieldAnisotropyMonte Carlo methodAmplitudeCondensed matter physicsMaterials scienceParticle (ecology)EllipsoidDiscrete dipole approximationField (mathematics)Molecular physicsPhysicsInverseComputational physicsOpticsGeometryQuantum mechanicsAstronomyGeologyPure mathematicsStatisticsOceanographyMathematicsPickering emulsions and particle stabilizationMicrofluidic and Bio-sensing TechnologiesElectrowetting and Microfluidic Technologies