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Artificial skin that simultaneously mimics sensory feedback and mechanical properties of natural skin holds substantial promise for next-generation robotic and medical devices. However, achieving such a biomimetic system that can seamlessly integrate with the human body remains a challenge. Through rational design and engineering of material properties, device structures, and system architectures, we realized a monolithic soft prosthetic electronic skin (e-skin). It is capable of multimodal perception, neuromorphic pulse-train signal generation, and closed-loop actuation. With a trilayer, high-permittivity elastomeric dielectric, we achieved a low subthreshold swing comparable to that of polycrystalline silicon transistors, a low operation voltage, low power consumption, and medium-scale circuit integration complexity for stretchable organic devices. Our e-skin mimics the biological sensorimotor loop, whereby a solid-state synaptic transistor elicits stronger actuation when a stimulus of increasing pressure is applied.
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Weichen Wang
Inner Mongolia University of Science and Technology
Yuanwen Jiang
California University of Pennsylvania
Donglai Zhong
Taiwan Semiconductor Manufacturing Company (United States)
Science
Stanford University
Gyeongsang National University
Beijing Institute of Neurosurgery
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Wang et al. (Thu,) studied this question.
synapsesocial.com/papers/69d919ae9402b8412aa3c152 — DOI: https://doi.org/10.1126/science.ade0086