Brownian motion of interacting nonspherical tracer particles: General theory

M. Hernández-Contreras and M. Medina-Noyola
Phys. Rev. E 54, 6573 – Published 1 December 1996
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Abstract

A general theoretical framework is developed to describe the tracer-diffusion properties of nonspherical Brownian tracer particles that interact with the other particles in a multicomponent colloidal suspension of generally nonspherical particles, in the absence of hydrodynamic interactions. Here we present the derivation of the generalized Langevin equation (GLE) for the linear and angular velocity describing the Brownian motion of the tracer particle. In addition to the dissipative plus the random force and torque exerted by the solvent, this GLE contains the dissipative plus random force and torque due to the direct interactions with the other particles. An exact and general expression is derived for the time-dependent friction tensor that embodies the effects of the latter. Using a generalized Wertheim-Lovett's relation, this expression is cast in two alternative but equivalent forms. The long-time and short-time limits (in reference to the structural relaxation time τI) are also discussed.

  • Received 12 June 1996

DOI:https://doi.org/10.1103/PhysRevE.54.6573

©1996 American Physical Society

Authors & Affiliations

M. Hernández-Contreras* and M. Medina-Noyola

  • Instituto de Física "Manuel Sandoval Vallarta," Universidad Autónoma de San Luis Potosí, Apartado Postal 629, 78000 San Luis Potosí, San Luis Potosi, Mexico

  • *Also at Departamento de Física, Centro de Investigación y Estudios Avanzados del IPN, Apdo. Postal 14-740, Mexico D.F., Mexico.

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Vol. 54, Iss. 6 — December 1996

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