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Concurrent reaction and diffusion in photo-responsive hydrogels

A hydrogel is a polymer network dispersed in an aqueous solvent. A hydrogel with photo-reactive molecules bonded on the polymer network can change its volume in response to light. The light triggers a chemical reaction of the photo-reactive molecules, for example the photo-isomerization of spirobenz...

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Bibliographic Details
Published in:Journal of the mechanics and physics of solids 2019-03, Vol.124, p.599-611
Main Authors: Xuan, Chen, Jin, Lihua
Format: Article
Language:English
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Summary:A hydrogel is a polymer network dispersed in an aqueous solvent. A hydrogel with photo-reactive molecules bonded on the polymer network can change its volume in response to light. The light triggers a chemical reaction of the photo-reactive molecules, for example the photo-isomerization of spirobenzopyran, and alters the interaction parameter between the polymer network and the solvent molecules, which drives the diffusion of the solvent molecules, inducing a volumetric change of the hydrogel. The photo-response kinetics of the hydrogel is governed by concurrent reaction and diffusion. In this paper, we establish a theoretical framework to describe the constitutive behavior of photo-responsive hydrogels based on non-equilibrium thermodynamics. The framework, coupling deformation of hydrogels with diffusion of solvent molecules and reaction of photo-reactive molecules, allows us to predict the spatiotemporal response of photo-responsive hydrogels under light and in the dark. We show the significantly different photo-response kinetics, including reaction-limited, diffusion-limited, and reaction-diffusion coupling processes, with constrained and free swelling of a hydrogel thin film as examples. Particularly, we demonstrate how slow diffusion postpones the onset of post-illumination kinetic response of a photo-responsive hydrogel in the dark. This framework provides us understanding and design guidelines for photo-responsive hydrogels.
ISSN:0022-5096
1873-4782
DOI:10.1016/j.jmps.2018.11.004