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Low-cost flexible printed circuit technology based microelectrode array for extracellular stimulation of the invertebrate locomotory system

机译:基于低成本柔性印刷电路技术的微电极阵列,用于无脊椎动物运动系统的细胞外刺激

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摘要

The biobotic control of invertebrates through functional electrical stimulation of neural and neuromuscular tissue is under active exploration. Implantable microelectrodes are often designed to be used in chronic long term applications in vertebrates and subjected to strict endurance and resolution requirements. However, these constraints can be relaxed in invertebrate-related applications to allow low cost production for high-volume markets. In this study, we propose flexible printed circuit board (flex-PCB) based electrodes for implantable neuromuscular stimulation, address related shortcomings, and suggest modifications in the fabrication process. We were able to obtain a charge storage capacity of 3.18 mC/cm~2 and 1 kHz impedance of 52 kΩ with gold electroplated 100 μm × 100 μm electrode sites on the flex-PCB electrodes. The electrodeposition of iridium oxide and electrochemical polymerization of PEDOT with dopant PSS on microelectrodes enhanced the charge storage capacity to 38.9 and 124.3 mC/cm~2 where the 1 kHz impedance magnitude was 16 kΩ and 3 kΩ, respectively. This improvement in electrochemical performance was also corroborated by current pulsed voltage excursion studies. The long term dip test in saline solution supports the potential of flex-PCB electrodes for neural electrostimulation of insects, while revealing potential instability in PEDOT-PSS coatings with continuous high current density pulsing.
机译:通过神经和神经肌肉组织的功能性电刺激对无脊椎动物的生物控制已在积极探索中。植入式微电极通常被设计用于脊椎动物的长期长期应用中,并受到严格的耐用性和分辨率要求。但是,在无脊椎动物相关的应用中可以放宽这些限制,以允许针对大量市场的低成本生产。在这项研究中,我们提出了基于柔性印刷电路板(flex-PCB)的电极,用于植入式神经肌肉刺激,解决了相关的缺点,并提出了制造过程中的修改建议。通过在柔性PCB电极上电镀100μm×100μm的金电极位,我们能够获得3.18 mC / cm〜2的电荷存储容量和52kΩ的1 kHz阻抗。氧化铱的电沉积和PEDOT与掺杂剂PSS在微电极上的电化学聚合将电荷存储容量提高到38.9和124.3 mC / cm〜2,其中1 kHz阻抗幅度分别为16kΩ和3kΩ。电流脉冲电压偏移研究也证实了电化学性能的改善。在盐溶液中的长期浸入测试支持挠性PCB电极对昆虫进行神经电刺激的潜力,同时揭示了在具有连续高电流密度脉冲的PEDOT-PSS涂层中潜在的不稳定性。

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