Instituto de Microelectrónica de Barcelona (IMB-CNM), CSIC, Campus UAB, Bellaterra, 08193, Barcelona, Spain.
Instituto de Microelectrónica de Barcelona (IMB-CNM), CSIC, Campus UAB, Bellaterra, 08193, Barcelona, Spain; CIBER de Bioingeniería, Biomateriales y Nanomedicina (CIBER-BBN), Jordi Girona 18-26, 08034, Barcelona, Spain.
Biosens Bioelectron. 2022 Apr 1;201:113952. doi: 10.1016/j.bios.2021.113952. Epub 2022 Jan 2.
This work reports on the fabrication and performance of a new on-chip array of gold thin-film electrodes arranged into five individually addressable miniaturized electrochemical cells. Each cell shows a two-electrode configuration comprising a single working electrode and a counter/pseudo-reference electrode that is compartmentalized to be shared among all the cells of the array. Using this configuration, just six contact pads are required, which significantly reduces the chip overall surface area. Electrochemical characterization studies are carried out in solutions containing the two species of reversible redox pairs. The concentration of one redox species can reliably be measured at the working electrode by applying potentiostatic techniques to record the current due to the corresponding electrochemical reaction. The redox counterpart in turn undergoes an electrochemical process at the counter/pseudo-reference electrode, which, under optimized experimental conditions, injects current and keeps the applied potential in the electrochemical cell without limiting the current being recorded at the working electrode. Under these conditions, the electrode array shows an excellent performance in electrochemical detection studies without any chemical or electrical cross-talk between cells. The enzymatic activity of horseradish peroxidase, alkaline phosphatase and myeloperoxidase enzymes is analyzed using different redox mediators. Quasi-simultaneous measurements with the five electrochemical cells of the array are carried out within 1 s time frame. This array layout can be suitable for multiplexed electrochemical immunoassays and immunosensor approaches and implementation in simplified electrochemical ELISA platforms that make use of enzyme labels. Moreover, the array reduced dimensions facilitate the integration into compact fluidic devices.
本工作报道了一种新的芯片上金薄膜电极阵列的制造和性能,该阵列由五个可单独寻址的微型电化学池组成。每个池都呈现出双电极配置,包括单个工作电极和一个被分隔开以在阵列的所有池之间共享的反电极/伪参比电极。使用这种配置,仅需要六个接触垫,这大大减少了芯片的总表面积。在含有两种可逆氧化还原对的溶液中进行了电化学特性研究。通过施加恒电位技术记录相应的电化学反应产生的电流,可以可靠地在工作电极处测量一种氧化还原物种的浓度。相反,氧化还原对在反电极/伪参比电极处发生电化学过程,在优化的实验条件下,该电极向电化学池注入电流并保持施加的电势,而不会限制在工作电极处记录的电流。在这些条件下,电极阵列在电化学检测研究中表现出出色的性能,各个池之间没有任何化学或电串扰。使用不同的氧化还原介质分析辣根过氧化物酶、碱性磷酸酶和髓过氧化物酶的酶活性。在 1 秒的时间框架内,对阵列的五个电化学池进行准同时测量。这种阵列布局适用于多重电化学免疫分析和免疫传感器方法,以及利用酶标记的简化电化学 ELISA 平台的实施。此外,阵列的缩小尺寸有利于集成到紧凑的流体装置中。