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用于改善植入和减轻机械故障的神经微探针建模与微制造。

Neural microprobe modelling and microfabrication for improved implantation and mechanical failure mitigation.

作者信息

McGlynn Eve, Walton Finlay, Das Rupam, Heidari Hadi

机构信息

Microelectronics Lab (meLAB), James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, UK.

出版信息

Philos Trans A Math Phys Eng Sci. 2022 Jul 25;380(2228):20210007. doi: 10.1098/rsta.2021.0007. Epub 2022 Jun 6.

Abstract

Careful design and material selection are the most beneficial strategies to ensure successful implantation and mitigate the failure of a neural probe in the long term. In order to realize a fully flexible implantable system, the probe should be easily manipulated by neuroscientists, with the potential to bend up to 90°. This paper investigates the impact of material choice, probe geometry, and crucially, implantation angle on implantation success through finite-element method simulations in followed by cleanroom microfabrication. The designs introduced in this paper were fabricated using two polyimides: (i) PI-2545 as a release layer and (ii) photodefinable HD-4110 as the probe substrate. Four different designs were microfabricated, and the implantation tests were compared between an agarose brain phantom and lamb brain samples. The probes were scanned in a 7 T PharmaScan MRI coil to investigate potential artefacts. From the simulation, a triangular base and 50 µm polymer thickness were identified as the optimum design, which produced a probe 57.7 µm thick when fabricated. The probes exhibit excellent flexibility, exemplified in three-point bending tests performed with a DAGE 4000Plus. Successful implantation is possible for a range of angles between 30° and 90°. This article is part of the theme issue 'Advanced neurotechnologies: translating innovation for health and well-being'.

摘要

精心的设计和材料选择是确保成功植入并长期减轻神经探针失败风险的最有益策略。为了实现一个完全灵活的可植入系统,该探针应由神经科学家轻松操作,并且具有弯曲至90°的潜力。本文通过有限元方法模拟,随后进行洁净室微加工,研究了材料选择、探针几何形状以及至关重要的植入角度对植入成功的影响。本文介绍的设计使用了两种聚酰亚胺进行制造:(i)PI-2545作为释放层,(ii)可光定义的HD-4110作为探针基板。微加工了四种不同的设计,并在琼脂糖脑模型和羊脑样本之间比较了植入测试。将探针在7 T PharmaScan MRI线圈中进行扫描,以研究潜在的伪影。通过模拟,确定三角形基底和50 µm的聚合物厚度为最佳设计,制造出来的探针厚度为57.7 µm。这些探针表现出出色的柔韧性,在使用DAGE 4000Plus进行的三点弯曲测试中得到了体现。在30°至90°的一系列角度范围内都有可能成功植入。本文是主题为“先进神经技术:将创新转化为健康与福祉”的一部分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce25/9168446/29678227f3b6/rsta20210007f01.jpg

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