IEEE Trans Nanobioscience. 2019 Apr;18(2):248-252. doi: 10.1109/TNB.2019.2905509. Epub 2019 Mar 15.
Electrochemical interfaces with low-impedance, high biocompatibility, and long-term stability are of paramount importance for microelectrode arrays (MEAs), that are widely used in numerous cellular sensing/stimulation applications, e.g., brain interface, electroceuticals, neuroprosthetics, drug discovery, chemical screening, and fundamental biological research. It is becoming increasingly critical since sensing/actuations at sub-cellular resolution necessitate ultra-miniaturized electrodes, which exhibit exacerbated electrochemical interfaces, especially on interfacial impedance. This paper reports the first comprehensive characterization and interfacial electrochemical impedance spectroscopy (EIS) of the ultra-miniaturized electrodes for different electrode sizes ( 8×8 μm , 16×16 μm , and 32×32 μm ) and a wide material collection (Au, Pt, TiN, and ITO). Equivalent electrochemical interfacial circuit models with interface capacitance, charge transfer resistance, and solution resistance are obtained for all the electrode designs based on their EIS measurements. The results can potentially guide the designs of ultra-miniaturized MEAs for future bioelectronics systems.
具有低阻抗、高生物相容性和长期稳定性的电化学界面对于微电极阵列 (MEA) 至关重要,MEA 广泛应用于许多细胞传感/刺激应用中,例如脑接口、电疗、神经假体、药物发现、化学筛选和基础生物学研究。由于需要亚细胞分辨率的传感/驱动,超小型电极的应用变得越来越重要,这会导致电化学界面恶化,尤其是在界面阻抗方面。本文首次全面表征和研究了不同尺寸(8×8 μm、16×16 μm 和 32×32 μm)和广泛材料(Au、Pt、TiN 和 ITO)的超小型电极的界面电化学阻抗谱 (EIS)。根据 EIS 测量结果,为所有电极设计获得了具有界面电容、电荷转移电阻和溶液电阻的等效电化学界面电路模型。这些结果可能为未来生物电子系统中超小型 MEA 的设计提供指导。