Home /Research /Chemical and Photochemical-Driven Dissipative Fe<sup>3+</sup>/Fe<sup>2+</sup>-Ion Cross-Linked Carboxymethyl Cellulose Gels Operating Under Aerobic Conditions: Applications for Transient Controlled Release and Mechanical Actuation
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Chemical and Photochemical-Driven Dissipative Fe<sup>3+</sup>/Fe<sup>2+</sup>-Ion Cross-Linked Carboxymethyl Cellulose Gels Operating Under Aerobic Conditions: Applications for Transient Controlled Release and Mechanical Actuation

Roberto Baretta, Gilad Davidson‐Rozenfeld, Vitaly Gutkin, Marco Frasconi, Itamar Willner

Year
2024
Citations
18
Access
Open access

Abstract

A Fe3+-ion cross-linked carboxymethyl cellulose, Fe3+-CMC, redox-active gel exhibiting dissipative, transient stiffness properties is introduced. Chemical or photosensitized reduction of the higher-stiffness Fe3+-CMC to the lower-stiffness Fe2+-CMC gel, accompanied by the aerobic reoxidation of the Fe2+-CMC matrix, leads to the dissipative, transient stiffness, functional matrix. The light-induced, temporal, transient release of a load (Texas red dextran) and the light-triggered, transient mechanical bending of a poly-N-isopropylacrylamide (p-NIPAM)/Fe3+-CMC bilayer construct are introduced, thus demonstrating the potential use of the dissipative Fe3+-CMC gel for controlled drug release or soft robotic applications.

Keywords

ChemistryCarboxymethyl celluloseDissipative systemBilayerRedoxTransient (computer programming)IonStiffnessMatrix (chemical analysis)Photochemistry

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