Functional Materials for 3D-Printed Soft Robotics: Conductors, Actuators, and Sensing Networks: A Review
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Journal of Robotics
Abstract
3D printing is transforming soft robotics by enabling complex geometries, rapid iteration, and cofabrication of structure, actu
ation, and sensing. Central to this progress are functional materials that provide stretchable conductivity, stimuli-responsive
actuation, and reliable sensing when deposited by additive processes. This reviews recent advances in conductive materials.
for printed soft systems (conductive polymer composites [CPCs], liquid metals, conductive hydrogels, and metalized inks), printed
actuators (pneumatic networks, stimuli-responsive hydrogels, dielectric elastomers, magnetically active and shape-memory composites)
sites), and sensing networks (resistive, capacitive, optical, and multimodal printed arrays). The paper emphasizes how material
choices interact with printing modalities (direct ink writing [DIW], multimaterial fused deposition [FDM], inkjet/aerosol jet, and
DLP/SLA), and further identifies constraints such as mechanical mismatch, postprocessing, long-term stability, energy supply,
and multimaterial interfacial reliability that currently limits translation. Finally, highlighting promising directions such as print
self-healing conductive hydrogels, multimodal printed skins, embedded energy and computation, and magneto-responsive inks
for untetheredactuation,and community standards for materialscharacterizationanddurabilitybenchmarking.
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Tyagi, R., Ghising, S., Bandhu, D., Tripathi, A., Kumar, V., Rahman, S. N., ... & Darko, D. A. (2026). Functional Materials for 3D‐Printed Soft Robotics: Conductors, Actuators, and Sensing Networks: A Review. Journal of Robotics, 2026(1), 6401146.
