Department of Electrical and Computer Engineering, University of Utah, Salt Lake City, UT, USA.
Biomed Mater. 2010 Feb;5(1):15007. doi: 10.1088/1748-6041/5/1/015007. Epub 2010 Feb 3.
Neural interfaces connect signal processing electronics to the nervous system via implanted microelectrode arrays such as the Utah electrode array (UEA). The active sites of the UEA are coated with thin films of either platinum (Pt) or iridium oxide (IrOx). Pt and IrOx have attracted attention as a stimulating or recording material due to their ability to transfer between ionic and electronic current and to resist corrosion. The physical, mechanical, chemical, electrical and optical properties of thin films depend on the method and deposition parameters used to deposit the films. In this work, surface morphology, impedance and charge capacity of Pt and sputtered iridium oxide film (SIROF) were investigated and compared with each other. UEAs with similar electrode area and shape were employed in this study. DC sputtering was used to deposit Pt films and pulsed-dc reactive sputtering was used to deposit SIROF. The electrodes coated with SIROF and Pt were characterized by scanning electron microscopy, cyclic voltammetry, electrochemical impedance spectroscopy and potential transient measurements to measure charge injection capacity (CIC). SIROF and Pt selectively deposited on the electrode tip had dendrite and granular microstructure, respectively. The CIC of unbiased SIROF and Pt was 2 and 0.3 mC cm(-2), respectively. The average impedance at 1 kHz, of SIROF and Pt electrodes, was 6 kOmega and 125 kOmega, respectively. Low impedance and high CIC make SIROF promising stimulation/recording material for neural prosthetic applications.
神经接口通过植入式微电极阵列(如犹他电极阵列(UEA))将信号处理电子设备与神经系统连接起来。UEA 的活性位点涂有铂(Pt)或氧化铱(IrOx)的薄膜。由于 Pt 和 IrOx 能够在离子和电子电流之间转换并抵抗腐蚀,因此它们作为刺激或记录材料引起了人们的关注。薄膜的物理、机械、化学、电气和光学性质取决于沉积薄膜所用的方法和沉积参数。在这项工作中,研究并比较了 Pt 和溅射氧化铱薄膜(SIROF)的表面形貌、阻抗和电荷容量。本研究采用了具有相似电极面积和形状的 UEA。直流溅射用于沉积 Pt 薄膜,脉冲直流反应溅射用于沉积 SIROF。通过扫描电子显微镜、循环伏安法、电化学阻抗谱和电位瞬态测量来测量电荷注入容量(CIC)来表征涂覆有 SIROF 和 Pt 的电极。选择性沉积在电极尖端的 SIROF 和 Pt 分别具有枝晶和颗粒状微观结构。未偏置的 SIROF 和 Pt 的 CIC 分别为 2 和 0.3 mC cm(-2)。SIROF 和 Pt 电极在 1 kHz 时的平均阻抗分别为 6 kΩ 和 125 kΩ。低阻抗和高 CIC 使得 SIROF 成为神经假体应用中很有前途的刺激/记录材料。