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PDMS-Based Conformable Microelectrode Arrays with Selectable Novel 3-D Microelectrode Geometries for Surface Stimulation and Recording

机译:基于PDMS的适形微电极阵列,可选择新颖的3-D微电极几何形状,用于表面刺激和记录

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摘要

A method for fabricating polydimethylsiloxane (PDMS) based conformable microelectrode arrays (MEAs) with selectable novel 3-D microelectrode geometries is presented. Simply recessed, conically recessed, exponentially recessed, and protruded-well microelectrodes have been fabricated on the MEA with a diameter as small as 10μm. 3-D microelectrode geometry parameters (recess depth, recess slope & profile, and protrusion/planar) can be controlled independently during fabrication. Exponentially and conically recessed microelectrodes are promising in chronic stimulation applications, such as neural prostheses, for their production of a uniform current density profile during stimulation, which can minimize stimulation-induced tissue burning and electrode corrosion. Protruded-well microelectrodes potentially provide a closer and sealed contact to the target tissue surface, avoiding current leakage during stimulation and thus achieving better stimulation efficiency in both charge delivery and spatial specificity.
机译:提出了一种制造基于聚二甲基硅氧烷(PDMS)的可选新的3-D微电极几何形状几何形状的适形微电极阵列(MEA)的方法。简单地凹陷,圆锥凹陷,指数凹陷和突出的井微电极已经在MEA上制造,其直径小至10μm。在制造期间,可以独立地控制3-D微电极几何参数(凹槽深度,凹槽和轮廓和突出/平面)。呈指数和圆锥凹陷的微电极在慢性刺激应用中,例如神经假体,其在刺激期间生产均匀电流密度曲线,这可以最小化刺激诱导的组织燃烧和电极腐蚀。突出的孔微电极可能提供与目标组织表面更靠近并且密封的接触,避免在刺激期间避免电流泄漏,从而实现电荷输送和空间特异性的更好的刺激效率。

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