Kishimoto Tatsunori, Doi Kentaro
Department of Mechanical Engineering, Toyohashi University of Technology, Toyohashi, Aichi441-8580, Japan.
ACS Omega. 2022 Oct 21;7(43):39437-39445. doi: 10.1021/acsomega.2c05973. eCollection 2022 Nov 1.
Transport phenomena in microfluidic chips are induced by electric fields and electrolyte concentrations. Liquid flows are often affected by ionic currents driven by electric fields in narrow channels, which are applied in microelectromechanical systems, microreactors, lab-on-a-chip, and so forth. Even though numerical studies to evaluate those local fields have been reported, measurement methods seem to be under construction. To deeply understand the dynamics of ions at the microscale, measurement techniques are necessary to be developed. In this study, we propose a novel method to directly measure electrical potential differences in liquids, local electric fields, and electrical conductivities, using a glass microelectrode. Scanning an electrolyte solution, for example, KCl solutions, with a 1 μm tip under constant ionic current conditions, a potential difference in liquids is locally measured with a micrometer-scale resolution. The conductivity of KCl solutions ranging from 0.56 to 100 mM is evaluated from electric fields locally measured, and errors are within 5% compared with the reference values. It is found that the present method enables us to directly measure local electric fields under constant current and that the electrical conductivity is quantitatively evaluated. Furthermore, it is suggested that the present method is available for various electrical analyses without calibration procedures before measurements.
微流控芯片中的传输现象是由电场和电解质浓度引起的。液体流动常常受到窄通道中电场驱动的离子电流的影响,这些窄通道应用于微机电系统、微反应器、芯片实验室等。尽管已经报道了评估这些局部场的数值研究,但测量方法似乎仍在构建中。为了深入理解微尺度下离子的动力学,有必要开发测量技术。在本研究中,我们提出了一种使用玻璃微电极直接测量液体中的电势差、局部电场和电导率的新方法例如,在恒定离子电流条件下,用1μm的尖端扫描电解质溶液(如KCl溶液),以微米级分辨率局部测量液体中的电势差。根据局部测量的电场评估0.56至100mM范围内KCl溶液的电导率,与参考值相比误差在5%以内。结果表明,本方法能够在恒定电流下直接测量局部电场,并对电导率进行定量评估。此外,还表明本方法无需在测量前进行校准程序即可用于各种电学分析。