Article ID Journal Published Year Pages File Type
608536 Journal of Colloid and Interface Science 2011 7 Pages PDF
Abstract

Colloidal phenomena play an important role in natural porous media, where they influence soil structuring, contaminant migration, filtration, and clogging. Several methods are available to measure pore space geometry within porous media, but these methods have limited applicability when the relevant physical, chemical, or biological processes are dominated by dynamic colloidal phenomena. Here we report a new technique to quantify colloid aggregate structure as a fractal dimension using static light scattering within index-matched porous media (granular Nafion). We validate the method by obtaining consistent results for scattering in suspensions and in porous media, and verify that multiple scattering at environmentally relevant colloid concentrations does not affect the determination of fractal dimension. We also observe restructuring of aggregates during homogenization in the porous media, indicated by an apparent increase in fractal dimension, which can be explained by an analysis of the fluid shear stress caused by repeated inversions of test tubes either containing or not containing granular media. This technique will permit progress in obtaining fundamental descriptions of colloidal phenomena in porous media.

Graphical abstractThe fractal dimension of colloid aggregates within porous media is resolved by static light scattering in optical cells containing index-matched granular Nafion.Figure optionsDownload full-size imageDownload high-quality image (102 K)Download as PowerPoint slideHighlights► A new technique probes the spatial and temporal scales of colloidal phenomena. ► Measured fractal dimensions are identical inside and outside porous media. ► The technique quantifies colloid aggregate restructuring by fluid shear.

Related Topics
Physical Sciences and Engineering Chemical Engineering Colloid and Surface Chemistry
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