Fabrication of multi-layer, high-density micro-electrode arrays for neural stimulation and bio-signal recording

G. Suaning, M. Schuettler, J. Ordonez, N. Lovell
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引用次数: 35

Abstract

The electrode-tissue interface is of principal importance in neuroprosthesis. Indeed the successes of the cochlear implant and other therapeutic devices are directly attributable to the design and fabrication techniques of their interfaces with neural tissue, that is, the electrode or electrode array. Traditional fabrication techniques are often labor-intensive and do not lend themselves to automation thereby increasing the cost of the electrode, and owing to fabrication variability, potentially compromising the reliability of the devices incorporating them. Exacerbating the difficulties in electrode fabrication further is the fact that only a handful of materials have been demonstrated to be biologically inert. These same materials are often among the most difficult to utilize in the fabrication of neural electrodes. In the present paper, a new methodology for automated fabrication of high-density electrode arrays is presented. Using exclusively biologically-inert raw materials, laser machining techniques combined with multiple layer structuring is shown to achieve feature sizes of the order of 25 mum. As an illustrative example, a 98 electrode array for interfacing with surviving retinal tissue through a visual prosthesis for the blind is presented. Overall dimensions of the array are of the order of 8.7 times 9.4 mm, consistent with approximately 25 degrees of visual field.
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用于神经刺激和生物信号记录的多层高密度微电极阵列的制备
电极-组织界面在神经假体中具有重要意义。事实上,人工耳蜗和其他治疗设备的成功直接归功于它们与神经组织接口的设计和制造技术,即电极或电极阵列。传统的制造技术通常是劳动密集型的,不适合自动化,从而增加了电极的成本,并且由于制造的可变性,潜在地损害了包含它们的设备的可靠性。只有少数材料被证明是生物惰性的,这进一步加剧了电极制造的困难。这些相同的材料通常是最难用于制造神经电极的材料之一。本文提出了一种高密度电极阵列自动化制造的新方法。仅使用生物惰性原料,结合多层结构的激光加工技术被证明可以实现25微米的特征尺寸。作为一个说明性的例子,98电极阵列的接口与幸存的视网膜组织通过视觉假体为盲人提出。阵列的整体尺寸约为8.7 × 9.4 mm,符合约25度的视野。
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