Publication: A dry-state electrode patterning strategy for electrically driven hydrogel actuators
Program
KU-Authors
KU Authors
Co-Authors
Ren, Z.
Liu, Z.
Wang, H.
Qin, C.
Zhang, Y.
Song, S.
Yuan, B.
Hu, W.
Editor & Affiliation
Compiler & Affiliation
Translator
Other Contributor
Date
Language
eng
Type
Embargo Status
Journal Title
Journal ISSN
Volume Title
Alternative Title
Abstract
Electrically driven hydrogels have emerged as promising candidate materials for soft actuators due to their large deformation capability and intrinsic compliance. However, conventional wet-state fabrication protocols severely restrict the precise patterning of complex electrode geometries and conductive traces, ultimately limiting attainable deformation and system-level integration. Herein, a facile dry-state electrode patterning strategy is reported, enabling superior design versatility for soft machines. Sputtering gold electrodes directly onto lyophilized hydrogel substrates achieves robust interfacial adhesion via topographic mechanical interlocking. This structural integration exhibits exceptional fatigue resistance, maintaining a stable sheet resistance of 1.79–2.25 Ω/sq even after 5000 continuous bending cycles. Furthermore, this dry-state processing method facilitates arbitrary two-dimensional (2D) electrode topologies and through-thickness vertical interconnect access (VIA) channels, establishing complex three-dimensional (3D) electrical routing. A conformal silicone coating on the electrodes effectively mitigates electrolysis-induced delamination, ensuring extended operational stability in underwater environments. The resulting actuators deliver programmable and versatile morphing capabilities, achieving a maximum curvature of 0.37 mm−1. Finally, by tailoring the polymer network’s mechanical compliance, the inherent elastic mismatch between the metallic film and the hydrogel is exploited to create conductive crack networks for proprioceptive sensing, enabling real-time deformation monitoring.
Source
Publisher
Elsevier BV
Subject
Hydrogel actuators, Electrode patterning strategies, Proprioceptive sensors
Citation
Has Part
Source
Sensors and Actuators a: Physical
Book Series Title
Edition
DOI
10.1016/j.sna.2026.118279
