Modeling of intermediate structures and chain conformation in silica-latex nanocomposites observed by SANS during annealing

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Abstract

The evolution of the polymer structure during nanocomposite formation and annealing of silica-latex nanocomposites is studied using contrast-variation small angle neutron scattering. The experimental system is made of silica nanoparticles (R si ≈ 8 nm) and a mixture of purpose-synthesized hydrogenated and deuterated nanolatex (R latex ≈ 12.5 nm). The progressive disappearance of the latex beads by chain interdiffusion and release in the nanocomposites is analyzed quantitatively with a model for the scattered intensity of hairy latex beads and an RPA description of the free chains. In silica-free matrices and nanocomposites of low silica content (7%v), the annealing procedure over weeks at up to T g + 85 K results in a molecular dispersion of chains, the radius of gyration of which is reported. At higher silica content (20%v), chain interdiffusion seems to be slowed down on time-scales of weeks, reaching a molecular dispersion only at the strongest annealing. Chain radii of gyration are found to be unaffected by the presence of the silica filler. © 2012 American Chemical Society.

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Genix, A. C., Tatou, M., Imaz, A., Forcada, J., Schweins, R., Grillo, I., & Oberdisse, J. (2012). Modeling of intermediate structures and chain conformation in silica-latex nanocomposites observed by SANS during annealing. Macromolecules, 45(3), 1663–1675. https://doi.org/10.1021/ma202308c

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