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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Silicon-substrate microelectrode arrays for parallel recording of neural activity in peripheral and cranial nerves
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Silicon-substrate microelectrode arrays for parallel recording of neural activity in peripheral and cranial nerves

机译:硅基微电极阵列,用于并行记录周围和颅神经的神经活动

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摘要

A new process for the fabrication of regeneration microelectrode arrays for peripheral and cranial nerve applications is presented. This type of array is implanted between the severed ends of nerves, the axons of which regenerate through via holes in the silicon and are thereafter held fixed with respect to the microelectrodes. The process described is designed for compatibility with industry-standard CMOS or BiCMOS processes (it does not involve high-temperature process steps nor heavily-doped etch-stop layers), and provides a thin membrane for the via holes, surrounded by a thick silicon supporting rim. Many basic questions remain regarding the optimum via hole and microelectrode geometries in terms of both biological and electrical performance of the implants, and therefore passive versions were fabricated as tools for addressing these issues in on-going work. Versions of the devices were implanted in the rat peroneal nerve and in the frog auditory nerve. In both cases, regeneration was verified histologically and it was observed that the regenerated nerves had reorganized into microfascicles containing both myelinated and unmyelinated axons and corresponding to the grid pattern of the via holes. These microelectrode arrays were shown to allow the recording of action potential signals in both the peripheral and cranial nerve settings, from several microelectrodes in parallel.
机译:提出了一种用于外周和颅神经应用的再生微电极阵列制造的新工艺。这种类型的阵列植入到神经的切断端之间,其轴突通过硅中的通孔再生,然后相对于微电极保持固定。所描述的工艺旨在与行业标准的CMOS或BiCMOS工艺兼容(它不涉及高温工艺步骤,也不包含重掺杂的蚀刻停止层),并为通孔提供了一层被厚硅包围的薄膜支撑轮辋。就植入物的生物学和电学性能而言,关于最佳通孔和微电极几何形状仍然存在许多基本问题,因此,无源版本被制造为用于解决正在进行的工作中的这些问题的工具。这些装置的版本被植入大鼠的腓骨神经和青蛙的听觉神经中。在这两种情况下,均通过组织学验证了再生,并且观察到再生的神经已重组为含有髓鞘和未髓鞘轴突并对应于通孔的网格图案的微束。这些微电极阵列显示为可以记录来自多个平行微电极的周围和颅神经环境中的动作电位信号。

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