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Hybrid Bionic Nerve Interface for Application in Bionic Limbs

Title
Hybrid Bionic Nerve Interface for Application in Bionic Limbs
Author(s)
Cho, YoungjunJeong, Hyung HwaShin, HeejaePak, Changsik JohnCho, JeongmokKim, YongwooKim, DonggeonKim, TaehyeonKim, HoijunKim, SoheeKwon, SoonchulHong, Joon PioSuh, Hyunsuk PeterLee, Sanghoon
Issued Date
2023-12
Citation
Advanced Science, v.10, no.35
Type
Article
Author Keywords
neural interfaceneuroprostheticregenerative peripheral nerve interfacerobotic legshape memory polymer
Keywords
CONDUCTION-VELOCITYBIOCOMPATIBILITYPAIN
ISSN
2198-3844
Abstract
Intuitive and perceptual neuroprosthetic systems require a high degree of neural control and a variety of sensory feedback, but reliable neural interfaces for long-term use that maintain their functionality are limited. Here, a novel hybrid bionic interface is presented, fabricated by integrating a biological interface (regenerative peripheral nerve interface (RPNI)) and a peripheral neural interface to enhance the neural interface performance between a nerve and bionic limbs. This interface utilizes a shape memory polymer buckle that can be easily implanted on a severed nerve and make contact with both the nerve and the muscle graft after RPNI formation. It is demonstrated that this interface can simultaneously record different signal information via the RPNI and the nerve, as well as stimulate them separately, inducing different responses. Furthermore, it is shownthat this interface can record naturally evoked signals from a walking rabbit and use them to control a robotic leg. The long-term functionality and biocompatibility of this interface in rabbits are evaluated for up to 29 weeks, confirming its promising potential for enhancing prosthetic control. © 2023 The Authors. Advanced Science published by Wiley-VCH GmbH.
URI
http://hdl.handle.net/20.500.11750/46706
DOI
10.1002/advs.202303728
Publisher
John Wiley and Sons Inc
Related Researcher
  • 김소희 Kim, Sohee
  • Research Interests Neural interface; Brain interface; Bio MEMS; Soft MEMS; Stretchable electronics; Zebrafish electrophysiology
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Appears in Collections:
Department of Robotics and Mechatronics Engineering Neuro-Interfaced Robotics Lab 1. Journal Articles

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