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Newtonian to non-newtonian fluid transition of a model transient network

Academic Article
Publication Date:
2018
abstract:
The viscosity of gel-forming fluids is notoriously complex and its study can benefit from new model systems that enable a detailed control of the network features. Here we use a novel and simple microfluidic-based active microrheology approach to study the transition from Newtonian to nonNewtonian behavior in a DNA hydrogel whose structure, connectivity, density of bonds, bond energy and kinetics are strongly temperature dependent and well known. In a temperature range of 15 degrees C, the system reversibly and continuously transforms from a Newtonian dispersion of low-valence nanocolloids into a strongly shear-thinning fluid, passing through a set of intermediate states where it behaves as a power-law fluid. We demonstrate that the knowledge of network topology and bond free energy enables to quantitatively predict the observed behavior using established rheology models.
Iris type:
01.01 Articolo in rivista
Keywords:
valence DNA nanostars; microfluidics; rehology; shear beaviour
List of contributors:
Osellame, Roberto; Bragheri, Francesca
Authors of the University:
BRAGHERI FRANCESCA
OSELLAME ROBERTO
Handle:
https://iris.cnr.it/handle/20.500.14243/347992
Published in:
SOFT MATTER (PRINT)
Journal
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