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Updated: Aug 6, 2026

Shape Memory Polymers for Active Cell Culture
Published on: July 4, 2011
"Inverse" shape memory effect in energetic electron crosslinked methylcellulose hydrogels: Programming, demonstration
Svenja Dorn1, Friedrich Schütte1, Robert Konieczny2
1Division of Surface Physics, Department of Physics and Earth System Sciences, University of Leipzig, Linnéstr. 5, 04103 Leipzig, Germany; Leibniz Institute of Surface Engineering (IOM), Permoserstr. 15, 04318 Leipzig, Germany.
Abstract:
Shape memory hydrogels constitute a highly attractive materials class that bears enormous potential within a broad range of areas - from engineering to medicine. Within the present contribution we demonstrate that energetic electron crosslinked methylcellulose-only hydrogels exhibit an "inverse" shape memory effect that transforms from a secondary shape to its primary shape upon cooling. The primary shape can conveniently be "programmed" by application of energetic electrons. This intrinsically sterilizing processing approach promises to preserve the excellent FDA-approved biocompatibility of methylcellulose, particularly as it does not involve potentially hazardous crosslinkers or other reagents with medically adverse effects. While we observe the transformation behavior in a systematic study as function of synthesis parameters, we also address functional fatigue and quantify fixity, strain recovery as well as attainable actuator forces. With the latter being in the range of 0.1 N, our actuator elements might prove useful for biomedical applications.
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