AbstractElectrophysiological devices are connected to the body through electrodes. In some applications, such a'/> Molybdenum coated SU-8 microneedle electrodes for transcutaneous electrical nerve stimulation
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Molybdenum coated SU-8 microneedle electrodes for transcutaneous electrical nerve stimulation

机译:涂有钼的SU-8微针电极可用于经皮电神经刺激

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AbstractElectrophysiological devices are connected to the body through electrodes. In some applications, such as nerve stimulation, it is needed to minimally pierce the skin and reach the underneath layers to bypass the impedance of the first layer called stratum corneum. In this study, we have designed and fabricated surface microneedle electrodes for applications such as electrical peripheral nerve stimulation. We used molybdenum for microneedle fabrication, which is a biocompatible metal; it was used for the conductive layer of the needle array. To evaluate the performance of the fabricated electrodes, they were compared with the conventional surface electrodes in nerve conduction velocity experiment. The recorded signals showed a much lower contact resistance and higher bandwidth in low frequencies for the fabricated microneedle electrodes compared to those of the conventional electrodes. These results indicate the electrode-tissue interface capacitance and charge transfer resistance have been increased in our designed electrodes, while the contact resistance decreased. These changes will lead to less harmful Faradaic current passing through the tissue during stimulation in different frequencies. We also compared the designed microneedle electrodes with conventional ones by a 3-dimensional finite element simulation. The results demonstrated that the current density in the deep layers of the skin and the directivity toward a target nerve for microneedle electrodes were much more than those for the conventional ones. Therefore, the designed electrodes are much more efficient than the conventional electrodes for superficial transcutaneous nerve stimulation purposes.
机译: Abstract 电生理设备通过电极连接到人体。在某些应用中,例如神经刺激,需要最小程度地刺穿皮肤并到达其下层,以绕过称为角质层的第一层的阻抗。在这项研究中,我们设计和制造了表面微针电极,用于诸如周围神经电刺激的应用。我们将钼用于微针制造,这是一种生物相容性金属。它用于针阵列的导电层。为了评估所制作电极的性能,在神经传导速度实验中将它们与常规表面电极进行了比较。与常规电极相比,所记录的信号对于所制造的微针电极在低频下显示出更低的接触电阻和更高的带宽。这些结果表明,在我们设计的电极中,电极-组织界面电容和电荷转移电阻已增加,而接触电阻则下降。这些变化将导致在刺激期间以不同频率通过组织的有害法拉第电流更少。我们还通过3维有限元模拟将设计的微针电极与常规电极进行了比较。结果表明,微针电极在皮肤深层的电流密度和朝向目标神经的方向性要比常规电极高得多。因此,所设计的电极在经皮神经刺激方面比常规电极有效得多。

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