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Layering, melting, and recrystallization of a close-packed micellar crystal under steady and large-amplitude oscillatory shear flows.

Authors :
López-Barrón, Carlos R.
Wagner, Norman J.
Porcar, Lionel
Source :
Journal of Rheology. May/Jun2015, Vol. 59 Issue 3, p793-820. 28p.
Publication Year :
2015

Abstract

The rheology and three-dimensional microstructure of a concentrated viscoelastic solution of the triblock copolymer poly(ethylene oxide)106-poly(propylene oxide)6 8-poly(ethylene oxide)106 (Pluronic F127) in the protic ionic liquid ethylammonium nitrate are measured by small angle neutron scattering (SANS) under flow in three orthogonal planes. This solution's shear-thinning viscosity is due to the formation of two-dimensional hexagonal close-packed (HCP) sliding layer structure. Shear-melting of the crystalline structure is observed without disruption of the selfassembled micelles, resulting in a change in flow properties. Spatially resolved measurements in the 1-2 plane reveal that both shear-melting and sliding are not uniform across the Couette gap. Melting and recrystallization of the HCP layers occur cyclically during a single large amplitude oscillatory shear (LAOS) cycle, in agreement with the "stick-slip" flow mechanism proposed by Hamley et al. [Phys. Rev. E 58, 7620-7628 (1998)]. Analysis of 3D "structural" Lissajous curves show that the cyclic melting and sliding are direct functions of the strain rate amplitude and show perfect correlation with the cyclic stress response during LAOS. Both viscosity and structural order obey the Delaware-Rutgers rule. Combining rheology with in situ spatiotemporally resolved SANS is demonstrated to elucidate the structural origins of the nonlinear rheology of complex fluids. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01486055
Volume :
59
Issue :
3
Database :
Academic Search Index
Journal :
Journal of Rheology
Publication Type :
Academic Journal
Accession number :
102583724
Full Text :
https://doi.org/10.1122/1.4917542