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Published in: Journal of Nanoparticle Research 3/2018

01-03-2018 | Research Paper

Dynamic shear rheology of colloidal suspensions of surface-modified silica nanoparticles in PEG

Authors: Swarna, Sudip Kumar Pattanayek, Anup Kumar Ghosh

Published in: Journal of Nanoparticle Research | Issue 3/2018

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Abstract

The present work illustrates the effect of surface modification of silica nanoparticles (500 nm) with 3-(glycidoxypropyl)trimethoxy silane which was carried out at different reaction times. The suspensions prepared from modified and unmodified silica nanoparticles were evaluated for their shear rate-dependent viscosity and strain-frequency-dependent modulus. The linear viscoelastic moduli, viz., storage modulus and loss modulus, were compared with those of nonlinear moduli. The shear-thickened suspensions displayed strain thinning at low-frequency smaller strains and a strong strain overshoot at higher strains, characteristics of a continuous shear thickening fluids. The shear-thinned suspension, conversely, exhibited a strong elastic dominance at smaller strains, but at higher strains, its strain softened observed in the steady shear viscosity plot indicating characteristics of yielding material. Considering higher order harmonic components, the decomposed elastic and viscous stress revealed a pronounced elastic response up to 10% strain and a high viscous damping at larger strains. The current work is one of a kind in demonstrating the effect of silica surface functionalization on the linear and nonlinear viscoelasticity of suspensions showing a unique rheological fingerprint. The suspensions can thus be predicted through rheological studies for their applicability in energy absorbing and damping materials with respect to their mechanical properties.

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Appendix
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Metadata
Title
Dynamic shear rheology of colloidal suspensions of surface-modified silica nanoparticles in PEG
Authors
Swarna
Sudip Kumar Pattanayek
Anup Kumar Ghosh
Publication date
01-03-2018
Publisher
Springer Netherlands
Published in
Journal of Nanoparticle Research / Issue 3/2018
Print ISSN: 1388-0764
Electronic ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-017-4121-2

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