Abstract
Polymer gels are comprised of a three-dimensional, cross-linked network that can typically withstand the mechanical deformation associated with both swelling and de-swelling. Thus, gels can be designed with smart behaviors that require both stress generation and dissipation, making them well-suited to many applications including membrane technology, water capture devices, and drug delivery systems. In contrast to the fully swelled equilibrium state, limited research characterizes the unsteady-state swelling regime prior to equilibrium. It is in this regime where unique surface deformations can occur. Here we show how internal network constraints and external diffusive pressure can be leveraged to manipulate swelling kinetics and surface deformations in poly(ethylene glycol) gels during unconstrained, three-dimensional swelling. We find that increasing cross-linker molecular weight and swelling in ethanol, as opposed to water, are both effective routes to increase the time it takes to reach equilibrium but do so through different mechanisms. Networks with fewer internal constraints, manipulated via cross-linker chain-length, imbibe more solvent over a longer time. In contrast, swelling in ethanol reduces the amount of solvent imbibed by the network while increasing the time to reach equilibrium. Measurements of surface patterns during swelling establishes that an immediate, fast relaxation at the surface occurs during the first five minutes of swelling. However, the density and persistence of these features varies with solvent quality. These results establish a framework for how soft materials undergo dynamic deformation. Engineering transient surface properties while mitigating unwanted instabilities opens the door for emerging technologies such as smart anti-fouling and sensors.
Original language | English (US) |
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Pages (from-to) | 6742-6753 |
Number of pages | 12 |
Journal | Soft Matter |
Volume | 20 |
Issue number | 34 |
DOIs | |
State | Published - Aug 5 2024 |
Funding
During this study, Alyssa VanZanten was supported by the NSF/DMR (Award 2311697) and Shih-Yuan Chen was partially supported by the NSF/DMR (Award 2311698). The authors would like to thank our labmates Sabrina Curley, Denghao Fu, and Samira Kahn, for their support and rigorous discussions.
ASJC Scopus subject areas
- General Chemistry
- Condensed Matter Physics