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Proof of Concept for Sustainable Manufacturing of Neural Electrode Array for In Vivo Recording

Increasing requirements for neural implantation are helping to expand our understanding of nervous systems and generate new developmental approaches. It is thanks to advanced semiconductor technologies that we can achieve the high-density complementary metal-oxide-semiconductor electrode array for t...

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Autores principales: Li, Szu-Ying, Tseng, Hsin-Yi, Chen, Bo-Wei, Lo, Yu-Chun, Shao, Huai-Hsuan, Wu, Yen-Ting, Li, Ssu-Ju, Chang, Ching-Wen, Liu, Ta-Chung, Hsieh, Fu-Yu, Yang, Yi, Lai, Yan-Bo, Chen, Po-Chun, Chen, You-Yin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9953957/
https://www.ncbi.nlm.nih.gov/pubmed/36832046
http://dx.doi.org/10.3390/bios13020280
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author Li, Szu-Ying
Tseng, Hsin-Yi
Chen, Bo-Wei
Lo, Yu-Chun
Shao, Huai-Hsuan
Wu, Yen-Ting
Li, Ssu-Ju
Chang, Ching-Wen
Liu, Ta-Chung
Hsieh, Fu-Yu
Yang, Yi
Lai, Yan-Bo
Chen, Po-Chun
Chen, You-Yin
author_facet Li, Szu-Ying
Tseng, Hsin-Yi
Chen, Bo-Wei
Lo, Yu-Chun
Shao, Huai-Hsuan
Wu, Yen-Ting
Li, Ssu-Ju
Chang, Ching-Wen
Liu, Ta-Chung
Hsieh, Fu-Yu
Yang, Yi
Lai, Yan-Bo
Chen, Po-Chun
Chen, You-Yin
author_sort Li, Szu-Ying
collection PubMed
description Increasing requirements for neural implantation are helping to expand our understanding of nervous systems and generate new developmental approaches. It is thanks to advanced semiconductor technologies that we can achieve the high-density complementary metal-oxide-semiconductor electrode array for the improvement of the quantity and quality of neural recordings. Although the microfabricated neural implantable device holds much promise in the biosensing field, there are some significant technological challenges. The most advanced neural implantable device relies on complex semiconductor manufacturing processes, which are required for the use of expensive masks and specific clean room facilities. In addition, these processes based on a conventional photolithography technique are suitable for mass production, which is not applicable for custom-made manufacturing in response to individual experimental requirements. The microfabricated complexity of the implantable neural device is increasing, as is the associated energy consumption, and corresponding emissions of carbon dioxide and other greenhouse gases, resulting in environmental deterioration. Herein, we developed a fabless fabricated process for a neural electrode array that was simple, fast, sustainable, and customizable. An effective strategy to produce conductive patterns as the redistribution layers (RDLs) includes implementing microelectrodes, traces, and bonding pads onto the polyimide (PI) substrate by laser micromachining techniques combined with the drop coating of the silver glue to stack the laser grooving lines. The process of electroplating platinum on the RDLs was performed to increase corresponding conductivity. Sequentially, Parylene C was deposited onto the PI substrate to form the insulation layer for the protection of inner RDLs. Following the deposition of Parylene C, the via holes over microelectrodes and the corresponding probe shape of the neural electrode array was also etched by laser micromachining. To increase the neural recording capability, three-dimensional microelectrodes with a high surface area were formed by electroplating gold. Our eco-electrode array showed reliable electrical characteristics of impedance under harsh cyclic bending conditions of over 90 degrees. For in vivo application, our flexible neural electrode array demonstrated more stable and higher neural recording quality and better biocompatibility as well during the 2-week implantation compared with those of the silicon-based neural electrode array. In this study, our proposed eco-manufacturing process for fabricating the neural electrode array reduced 63 times of carbon emissions compared to the traditional semiconductor manufacturing process and provided freedom in the customized design of the implantable electronic devices as well.
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spelling pubmed-99539572023-02-25 Proof of Concept for Sustainable Manufacturing of Neural Electrode Array for In Vivo Recording Li, Szu-Ying Tseng, Hsin-Yi Chen, Bo-Wei Lo, Yu-Chun Shao, Huai-Hsuan Wu, Yen-Ting Li, Ssu-Ju Chang, Ching-Wen Liu, Ta-Chung Hsieh, Fu-Yu Yang, Yi Lai, Yan-Bo Chen, Po-Chun Chen, You-Yin Biosensors (Basel) Article Increasing requirements for neural implantation are helping to expand our understanding of nervous systems and generate new developmental approaches. It is thanks to advanced semiconductor technologies that we can achieve the high-density complementary metal-oxide-semiconductor electrode array for the improvement of the quantity and quality of neural recordings. Although the microfabricated neural implantable device holds much promise in the biosensing field, there are some significant technological challenges. The most advanced neural implantable device relies on complex semiconductor manufacturing processes, which are required for the use of expensive masks and specific clean room facilities. In addition, these processes based on a conventional photolithography technique are suitable for mass production, which is not applicable for custom-made manufacturing in response to individual experimental requirements. The microfabricated complexity of the implantable neural device is increasing, as is the associated energy consumption, and corresponding emissions of carbon dioxide and other greenhouse gases, resulting in environmental deterioration. Herein, we developed a fabless fabricated process for a neural electrode array that was simple, fast, sustainable, and customizable. An effective strategy to produce conductive patterns as the redistribution layers (RDLs) includes implementing microelectrodes, traces, and bonding pads onto the polyimide (PI) substrate by laser micromachining techniques combined with the drop coating of the silver glue to stack the laser grooving lines. The process of electroplating platinum on the RDLs was performed to increase corresponding conductivity. Sequentially, Parylene C was deposited onto the PI substrate to form the insulation layer for the protection of inner RDLs. Following the deposition of Parylene C, the via holes over microelectrodes and the corresponding probe shape of the neural electrode array was also etched by laser micromachining. To increase the neural recording capability, three-dimensional microelectrodes with a high surface area were formed by electroplating gold. Our eco-electrode array showed reliable electrical characteristics of impedance under harsh cyclic bending conditions of over 90 degrees. For in vivo application, our flexible neural electrode array demonstrated more stable and higher neural recording quality and better biocompatibility as well during the 2-week implantation compared with those of the silicon-based neural electrode array. In this study, our proposed eco-manufacturing process for fabricating the neural electrode array reduced 63 times of carbon emissions compared to the traditional semiconductor manufacturing process and provided freedom in the customized design of the implantable electronic devices as well. MDPI 2023-02-16 /pmc/articles/PMC9953957/ /pubmed/36832046 http://dx.doi.org/10.3390/bios13020280 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Szu-Ying
Tseng, Hsin-Yi
Chen, Bo-Wei
Lo, Yu-Chun
Shao, Huai-Hsuan
Wu, Yen-Ting
Li, Ssu-Ju
Chang, Ching-Wen
Liu, Ta-Chung
Hsieh, Fu-Yu
Yang, Yi
Lai, Yan-Bo
Chen, Po-Chun
Chen, You-Yin
Proof of Concept for Sustainable Manufacturing of Neural Electrode Array for In Vivo Recording
title Proof of Concept for Sustainable Manufacturing of Neural Electrode Array for In Vivo Recording
title_full Proof of Concept for Sustainable Manufacturing of Neural Electrode Array for In Vivo Recording
title_fullStr Proof of Concept for Sustainable Manufacturing of Neural Electrode Array for In Vivo Recording
title_full_unstemmed Proof of Concept for Sustainable Manufacturing of Neural Electrode Array for In Vivo Recording
title_short Proof of Concept for Sustainable Manufacturing of Neural Electrode Array for In Vivo Recording
title_sort proof of concept for sustainable manufacturing of neural electrode array for in vivo recording
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9953957/
https://www.ncbi.nlm.nih.gov/pubmed/36832046
http://dx.doi.org/10.3390/bios13020280
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