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DOE OSTI · 3685243

Toward Fully Soft and Multifunctional Shape Sensing via Optical Waveguide Arrays

Abstract

For soft bodies, surface deformation and pressure provide proprioceptive and exteroceptive information, including body configuration, body compliance, and external forces. We develop a sheet sensor with a fully soft sensing surface that provides surface shape reconstruction using optical waveguide arrays. The waveguides are fabricated to achieve a tunable linear response to bi‐directional bending curvature, and the waveguide arrays are configured to differentiate between ambiguous shapes. We characterize the waveguide performance, relating curvature sensitivity to the core's surface roughness. Synergy of waveguide responses reduces the number of sensing elements required and achieves damage resilience. Using waveguide sensitivity to pressure, we also demonstrate feasibility for exteroception. We demonstrate the multifunctional sensing capability by wrapping the sheet around an upper arm, showcasing joint motion and external force sensing. Integrated into or applied onto surfaces of robotic or living systems, this design can be implemented in applications such as virtual reality, teleoperation, physical therapy, and soft robotics.

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BibTeXRIS

Yu, Qifan [Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge Massachusetts USA] (ORCID:0000000331310231), Cao, Nina [Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge Massachusetts USA], Becker, Kaitlyn [Department of Mechanical Engineering Massachusetts Institute of Technology Cambridge Massachusetts USA] (ORCID:000000032650295X). 2026-07-29. Toward Fully Soft and Multifunctional Shape Sensing via Optical Waveguide Arrays. https://doi.org/10.1002/aisy.70488

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