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Updated: Feb 1, 2026

In situ Photo-rheology Monitors Viscoelastic Changes in Photo-responsive Polymer Networks
Published on: June 20, 2025
The viscoelastic signature underpinning polymer deformation under shear flow
Airidas Korolkovas1, Sylvain Prévost2, Maciej Kawecki3
1Institut Laue-Langevin, 71 rue des Martyrs, 38000 Grenoble, France. korolkovas@ill.fr and Department for Physics and Astronomy, Lägerhyddsvägen 1, 752 37 Uppsala, Sweden.
Abstract:
Entangled polymers are deformed by a strong shear flow. The shape of the polymer, called the form factor, is measured by small angle neutron scattering. However, the real-space molecular structure is not directly available from the reciprocal-space data, due to the phase problem. Instead, the data has to be fitted with a theoretical model of the molecule. We approximate the unknown structure using piecewise straight segments, from which we derive an analytical form factor. We fit it to our data on a semi-dilute entangled polystyrene solution under in situ shear flow. The character of the deformation is shown to lie between that of a single ideal chain (viscous) and a cross-linked network (elastic rubber). Furthermore, we use the fitted structure to estimate the mechanical stress, and find a fairly good agreement with rheology literature.
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