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Additively manufactured micro-lattice dielectrics for multiaxial capacitive sensors

Arielle Berman, Kaiwen Hsiao, Samuel E. Root, Hojung Choi, Daniel Ilyn, Chengyi Xu, Emily Stein, Mark R. Cutkosky, Joseph M. DeSimone, Zhenan Bao

Year
2024
Citations
44

Abstract

Soft sensors that can perceive multiaxial forces, such as normal and shear, are of interest for dexterous robotic manipulation and monitoring of human performance. Typical planar fabrication techniques have substantial design constraints that often prohibit the creation of functionally compelling and complex architectures. Moreover, they often require multiple-step operations for production. Here, we use an additive manufacturing process based on continuous liquid interface production to create high-resolution (30-micrometer) three-dimensional elastomeric polyurethane lattices for use as dielectric layers in capacitive sensors. We show that the capacitive responses and sensitivities are highly tunable through designs of lattice type, thickness, and material-void volume percentage. Microcomputed tomography and finite element simulation are used to elucidate the influence of lattice design on the deformation mechanism and concomitant sensing behavior. The advantage of three-dimensional printing is exhibited with examples of fully printed representative athletic equipment with integrated sensors.

Keywords

Capacitive sensingMaterials scienceFabricationDielectric3D printingNanotechnologyMiniaturizationElastomerLattice (music)Planar

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