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Joo, Jinmyoung
Laboratory for Advanced Biomaterials and Translational Medicine
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Structurally Aligned Multifunctional Neural Probe (SAMP) Using Forest-Drawn CNT Sheet onto Thermally Drawn Polymer Fiber for Long-Term In Vivo Operation

Author(s)
Jeon, WoojinLee, Jae MyeongKim, YejiLee, YunheumWon, JoonheeLee, SominSon, WonkyeongKoo, YonghoeHong, Ji-WonGwac, HocheolJoo, JinmyoungKim, Seon JeongChoi, ChangsoonPark, Seongjun
Issued Date
2024-07
DOI
10.1002/adma.202313625
URI
https://scholarworks.unist.ac.kr/handle/201301/83139
Citation
ADVANCED MATERIALS, v.36, no.27, pp.2313625
Abstract
Neural probe engineering is a dynamic field, driving innovation in neuroscience and addressing scientific and medical demands. Recent advancements involve integrating nanomaterials to improve performance, aiming for sustained in vivo functionality. However, challenges persist due to size, stiffness, complexity, and manufacturing intricacies. To address these issues, a neural interface utilizing freestanding CNT-sheets drawn from CNT-forests integrated onto thermally drawn functional polymer fibers is proposed. This approach yields a device with structural alignment, resulting in exceptional electrical, mechanical, and electrochemical properties while retaining biocompatibility for prolonged periods of implantation. This Structurally Aligned Multifunctional neural Probe (SAMP) employing forest-drawn CNT sheets demonstrates in vivo capabilities in neural recording, neurotransmitter detection, and brain/spinal cord circuit manipulation via optogenetics, maintaining functionality for over a year post-implantation. The straightforward fabrication method's versatility, coupled with the device's functional reliability, underscores the significance of this technique in the next-generation carbon-based implants. Moreover, the device's longevity and multifunctionality position it as a promising platform for long-term neuroscience research.
Publisher
WILEY-V C H VERLAG GMBH
ISSN
0935-9648
Keyword (Author)
chronic usagefiberneural probethermal drawing processcarbon nanotube sheet
Keyword
BRAINCARBON NANOTUBESMICROELECTRODESOPTOGENETICS

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