Programmable material via thiol-ene polymerization initiated by electric-field induced thiyl radical on piezoelectric ZnO
Abstract
Abstract The spatial and temporal control of material properties at a distance has yielded many unique innovations including photo-patterning, 3D-printing, and architected material design. To date, most of these innovations have relied on light, heat, sound, or electric current as stimuli for controlling the material properties. Here, we demonstrate that an electric field can induce chemical reactions and subsequent polymerization in composites via piezoelectrically-mediated transduction. The response to an electric field rather than through direct contact with an electrode is mediated by a nanoparticle transducer, i.e., piezoelectric ZnO, which mediates reactions between thiol and alkene monomers, resulting in tunable moduli as a function of voltage, time, and the frequency of the applied AC power. The reactivity of the mixture and the modulus of a naïve material containing these elements can be programmed based on the distribution of the electric field strength. This programmability results in multi-stiffness gels. Additionally, the system can be adjusted for the formation of an electro-adhesive. This simple and generalizable design opens avenues for facile application in adaptive damping and variable-rigidity materials, adhesive, soft robotics, and potentially tissue engineering.
Article Details
Authors (15)
Jun Wang
Zhao Wang
State Key Laboratory of Bioinspired Interfacial Materials Science, State and Local Joint Engineering Laboratory for Novel Functional Polymeric Materials, Jiangsu Key Laboratory of Advanced Functional Polymer Materials, Suzhou Key Laboratory of Macromolecular Design and Precision Synthesis, College of Chemistry, Chemical Engineering and Materials Science
Jorge Ayarza
Ian Frankel
Chao-Wei Huang
Kai Qian
Yixiao Dong
Pin-Ruei Huang
Katie Kloska
Chao Zhang
Siqi Zou
Matthew Mason
Chong Liu
Department of Chemistry and Biochemistry
Nicholas Boechler
Aaron P. Esser-Kahn
Pritzker School of Molecular Engineering, University of Chicago