Ionic and Electrochemical Polymer Actuators in Printed Structures: Ion Transport, Hydration, Strain and Drift

Segurola, Juan

2026-10-07 · Report · Version 0.1

Ionic and electrochemical polymer actuators generate deformation through ion migration, solvent redistribution, redox state change or osmotic swelling. Their low drive voltage is attractive, but response depends strongly on hydration, counter-ion identity, electrode morphology and time. A printed support or photopolymer matrix can constrain swelling and introduce diffusion lengths that differ from thin-film demonstrations. Qualification therefore has to separate reversible electromechanical response from solvent loss, electrode polarization and irreversible chemical change. Current transients, mass or water content, curvature, blocking force and open-circuit recovery together define the operating state. The engineering result is an envelope for voltage and duty cycle, a controlled hydration or electrolyte condition, and a drift limit beyond which recalibration or reconditioning is required. ER-372.

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Version DOI 10.5281/zenodo.23202127 · All versions in Zenodo

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