Multiscale Filler Structure in Simplified Industrial Nanocomposite Silica/SBR Systems Studied by SAXS and TEM
Guilhem Baeza (L2C), ANNE-CAROLINE GENIX (L2C), Christophe, Degrandcourt, Laurent Petitjean, J\'er\'emie Gummel (ESRF), Marc Couty,, Julian OBERDISSE (L2C)

TL;DR
This study combines SAXS and TEM to analyze the multiscale silica filler structure in simplified SBR nanocomposites, revealing fractal networks and aggregate properties relevant for industrial rubber applications.
Contribution
It presents a comprehensive multiscale model linking primary silica particles to large-scale filler networks, including quantitative analysis of aggregate size, compacity, and distribution in nanocomposites.
Findings
Filler network exhibits a fractal dimension of 2.4.
Average silica aggregate radius is 35-40 nm.
Aggregate volume fraction exceeds silica content due to network structure.
Abstract
Simplified silica (Zeosil 1165 MP) and SBR (140k carrying silanol end-groups) nanocomposites have been formulated by mixing of a reduced number of ingredients with respect to industrial applications. The thermo-mechanical history of the samples during the mixing process was monitored and adjusted to identical final temperatures. The filler structure on large scales up to micrometers was studied by transmission electron microscopy (TEM) and very small-angle X-ray scattering (SAXS). A complete quantitative model extending from the primary silica nanoparticle (of radius \approx 10 nm), to nanoparticles aggregates, up to micrometer-sized branches with typical lateral dimension of 150 nm is proposed. Image analysis of the TEM-pictures yields the fraction of zones of pure polymer, which extend between the branches of a large-scale filler network. This network is compatible with a fractal of…
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