基于光敏聚酰亚胺的神经电极结构制造方法。

Frontiers in neuroengineering Pub Date : 2012-06-18 eCollection Date: 2012-01-01 DOI:10.3389/fneng.2012.00011
Yasuhiro X Kato, Shigeto Furukawa, Kazuyuki Samejima, Naoyuki Hironaka, Makio Kashino
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引用次数: 23

摘要

提出了一种基于广泛光敏聚酰亚胺(PSPI)的神经电极结构设计和制造方法。该方法旨在扩大神经电极的设计灵活性和制造能力,以提高记录信号的质量并集成其他功能。在表征了PSPI在微加工过程中的性能后,我们成功地设计和制造了各种神经电极,甚至在非平面基板上,仅使用一种PSPI作为绝缘材料,而无需耗时的干蚀刻工艺。所制备的神经电极包括皮质电图(ECoG)电极、具有独特格状网状结构用于固定神经组织的网状皮质内电极和放置在导管曲面上的记录微电极作为微透析探头的导管电极。麻醉大鼠的体内神经记录表明,这些电极可以用来反复记录神经活动,而不会出现任何断裂和机械故障,这可能会保证长时间稳定的记录。这些成功使我们相信,这种基于pspi的制造是一种强大的方法,允许灵活的设计和易于优化的电极结构,用于各种电生理实验研究,提高神经记录性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Photosensitive-polyimide based method for fabricating various neural electrode architectures.

Photosensitive-polyimide based method for fabricating various neural electrode architectures.

Photosensitive-polyimide based method for fabricating various neural electrode architectures.

Photosensitive-polyimide based method for fabricating various neural electrode architectures.

An extensive photosensitive-polyimide (PSPI)-based method for designing and fabricating various neural electrode architectures was developed. The method aims to broaden the design flexibility and expand the fabrication capability for neural electrodes to improve the quality of recorded signals and integrate other functions. After characterizing PSPI's properties for micromachining processes, we successfully designed and fabricated various neural electrodes even on a non-flat substrate using only one PSPI as an insulation material and without the time-consuming dry etching processes. The fabricated neural electrodes were an electrocorticogram (ECoG) electrode, a mesh intracortical electrode with a unique lattice-like mesh structure to fixate neural tissue, and a guide cannula electrode with recording microelectrodes placed on the curved surface of a guide cannula as a microdialysis probe. In vivo neural recordings using anesthetized rats demonstrated that these electrodes can be used to record neural activities repeatedly without any breakage and mechanical failures, which potentially promises stable recordings for long periods of time. These successes make us believe that this PSPI-based fabrication is a powerful method, permitting flexible design, and easy optimization of electrode architectures for a variety of electrophysiological experimental research with improved neural recording performance.

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