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Electrical Characterization of 3D Au Microelectrodes for Use in Retinal Prostheses

机译:用于视网膜假体的3D Au微电极的电学表征

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摘要

In order to provide high-quality visual information to patients who have implanted retinal prosthetic devices, the number of microelectrodes should be large. As the number of microelectrodes is increased, the dimensions of each microelectrode must be decreased, which in turn results in an increased microelectrode interface impedance and decreased injection current dynamic range. In order to improve the trade-off envelope between the number of microelectrodes and the current injection characteristics, a 3D microelectrode structure can be used as an alternative. In this paper, the electrical characteristics of 2D and 3D Au microelectrodes were investigated. In order to examine the effects of the structural difference, 2D and 3D Au microelectrodes with different base areas but similar effective surface areas were fabricated and evaluated. Interface impedances were measured and similar dynamic ranges were obtained for both 2D and 3D Au microelectrodes. These results indicate that more electrodes can be implemented in the same area if 3D designs are used. Furthermore, the 3D Au microelectrodes showed substantially enhanced electrical durability characteristics against over-injected stimulation currents, withstanding electrical currents that are much larger than the limit measured for 2D microelectrodes of similar area. This enhanced electrical durability property of 3D Au microelectrodes is a new finding in microelectrode research, and makes 3D microelectrodes very desirable devices.
机译:为了向植入了视网膜假体设备的患者提供高质量的视觉信息,微电极的数量应该很多。随着微电极数量的增加,必须减小每个微电极的尺寸,这进而导致微电极界面阻抗的增加和注入电流动态范围的减小。为了改善微电极的数量和电流注入特性之间的折衷范围,可以将3D微电极结构用作替代方案。本文研究了2D和3D Au微电极的电学特性。为了检查结构差异的影响,制造并评估了具有不同基面积但具有相似有效表面积的2D和3D Au微电极。测量了2D和3D Au微电极的界面阻抗并获得了相似的动态范围。这些结果表明,如果使用3D设计,则可以在同一区域中实现更多电极。此外,该3D Au微电极显示出相对于过度注入的刺激电流而言显着增强的电耐久性特征,承受的电流远大于针对相似面积的2D微电极所测量的极限。 3D Au微电极增强的电耐久性是微电极研究中的一个新发现,使3D微电极成为非常理想的器件。

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