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A Highly Compliant Serpentine Shaped Polyimide Interconnect for Front-End Strain Relief in Chronic Neural Implants

机译:高度合规的蛇形聚酰亚胺互连件用于缓解慢性神经植入物的前端应变

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摘要

While the signal quality of recording neural electrodes is observed to degrade over time, the degradation mechanisms are complex and less easily observable. Recording microelectrodes failures are attributed to different biological factors such as tissue encapsulation, immune response, and disruption of blood-brain barrier (BBB) and non-biological factors such as strain due to micromotion, insulation delamination, corrosion, and surface roughness on the recording site (–,). Strain due to brain micromotion is considered to be one of the important abiotic factors contributing to the failure of the neural implants. To reduce the forces exerted by the electrode on the brain, a high compliance 2D serpentine shaped electrode cable was designed, simulated, and measured using polyimide as the substrate material. Serpentine electrode cables were fabricated using MEMS microfabrication techniques, and the prototypes were subjected to load tests to experimentally measure the compliance. The compliance of the serpentine cable was numerically modeled and quantitatively measured to be up to 10 times higher than the compliance of a straight cable of same dimensions and material.
机译:尽管观察到记录神经电极的信号质量会随着时间而下降,但降解机制很复杂,不易观察到。记录微电极的故障归因于不同的生物学因素,例如组织封装,免疫反应和血脑屏障(BBB)的破坏,以及非生物学因素,例如由于微运动,绝缘层脱层,腐蚀和记录表面粗糙引起的应变网站(–,)。脑微动所引起的应变被认为是导致神经植入物衰竭的重要非生物因素之一。为了减少电极施加在大脑上的力,使用聚酰亚胺作为基材,设计,模拟和测量了高柔度2D蛇形电极电缆。使用MEMS微制造技术制造蛇形电极电缆,并对原型进行负载测试,以实验方式测量其顺应性。对蛇形电缆的柔度进行了数值建模和定量测量,其结果比相同尺寸和材料的直电缆的柔度高10倍。

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