Short- and long-time diffusion, and dynamic scaling in suspensions of charged colloidal particles
Autor: | Marco Heinen, Adolfo J. Banchio, Peter Holmqvist, Gerhard Nägele |
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Rok vydání: | 2017 |
Předmět: |
Stokesian dynamics
Ciencias Físicas General Physics and Astronomy FOS: Physical sciences 02 engineering and technology Condensed Matter - Soft Condensed Matter Otras Ciencias Físicas 01 natural sciences Molecular physics purl.org/becyt/ford/1 [https] Dynamic light scattering STOKESIAN DYNAMICS 0103 physical sciences CHARGED COLLOIDS ddc:530 Physical and Theoretical Chemistry Exponential decay Brownian motion Physics MODE-COUPLING-THEORY 010304 chemical physics Scattering COLLOIDAL DYNAMICS purl.org/becyt/ford/1.3 [https] Hard spheres 021001 nanoscience & nanotechnology Mean squared displacement Condensed Matter::Soft Condensed Matter Time derivative Soft Condensed Matter (cond-mat.soft) 0210 nano-technology CIENCIAS NATURALES Y EXACTAS |
Zdroj: | CONICET Digital (CONICET) Consejo Nacional de Investigaciones Científicas y Técnicas instacron:CONICET The journal of chemical physics 148(13), 134902-(2018). doi:10.1063/1.5017969 |
DOI: | 10.48550/arxiv.1711.09988 |
Popis: | We report on a comprehensive theory-simulation-experimental study of collective and self-diffusion in concentrated suspensions of charge-stabilized colloidal spheres. In theory and simulation, the spheres are assumed to interact directly by a hard-core plus screened Coulomb effective pair potential. The intermediate scattering function, fc(q, t), is calculated by elaborate accelerated Stokesian dynamics (ASD) simulations for Brownian systems where many-particle hydrodynamic interactions (HIs) are fully accounted for, using a novel extrapolation scheme to a macroscopically large system size valid for all correlation times. The study spans the correlation time range from the colloidal short-time to the long-time regime. Additionally, Brownian Dynamics (BD) simulation and mode-coupling theory (MCT) results of fc(q, t) are generated where HIs are neglected. Using these results, the influence of HIs on collective and self-diffusion and the accuracy of the MCT method are quantified. It is shown that HIs enhance collective and self-diffusion at intermediate and long times. At short times self-diffusion, and for wavenumbers outside the structure factor peak region also collective diffusion, are slowed down by HIs. MCT significantly overestimates the slowing influence of dynamic particle caging. The dynamic scattering functions obtained in the ASD simulations are in overall good agreement with our dynamic light scattering (DLS) results for a concentration series of charged silica spheres in an organic solvent mixture, in the experimental time window and wavenumber range. From the simulation data for the time derivative of the width function associated with fc(q, t), there is indication of long-time exponential decay of fc(q, t), for wavenumbers around the location of the static structure factor principal peak. The experimental scattering functions in the probed time range are consistent with a time-wavenumber factorization scaling behavior of fc(q, t) that was first reported by Segrè and Pusey [Phys. Rev. Lett. 77, 771 (1996)] for suspensions of hard spheres. Our BD simulation and MCT results predict a significant violation of exact factorization scaling which, however, is approximately restored according to the ASD results when HIs are accounted for, consistent with the experimental findings for fc(q, t). Our study of collective diffusion is amended by simulation and theoretical results for the self-intermediate scattering function, fs(q, t), and its non-Gaussian parameter α2(t) and for the particle mean squared displacement W(t) and its time derivative. Since self-diffusion properties are not assessed in standard DLS measurements, a method to deduce W(t) approximately from fc(q, t) is theoretically validated. Fil: Banchio, Adolfo Javier. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Córdoba. Instituto de Física Enrique Gaviola. Universidad Nacional de Córdoba. Instituto de Física Enrique Gaviola; Argentina. Universidad Nacional de Córdoba. Facultad de Matemática, Astronomía y Física; Argentina Fil: Heinen, Marco. Universidad de Guanajuato; México Fil: Holmqvist, Peter. Lund University; Suecia Fil: Nägele, Gerhard. Universitat Dusseldorf; Alemania. Helmholtz Gemeinschaft. Forschungszentrum Jülich; Alemania |
Databáze: | OpenAIRE |
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