Center for Nanotechnology, Indian Institute of Technology Roorkee, Roorkee, 247667, India.
Department of Electronics & Communication Engineering, Indian Institute of Technology Roorkee, Roorkee, 247667, India.
Biomed Microdevices. 2021 Jan 15;23(1):9. doi: 10.1007/s10544-021-00545-4.
In this work, an optimized, non-invasive four electrode-based impedimetric sensors have been designed, fabricated, and characterized for measuring the impedance of a biological cell. The impedimetric sensors having four mono-polar electrodes were fabricated utilizing the photolithography technique with gold as the electrode material. Furthermore, the impedance of the electrolyte/electrode interface was simulated by optimizing different parameters, including applied voltage, PBS thickness, and diameter, using COMSOL Multiphysics software for a frequency range of 100 Hz to 1 MHz. Next, the impedance of the fabricated device was measured experimentally using the electrochemical impedance spectroscopy (EIS) technique. Then, the COMSOL data was equated with the impedance obtained from the fabricated devices to realize the feasibility and error percentage (RSE < 5%) of the sensor. The equivalent circuit model for the measured impedance data of PBS was obtained utilizing the ZsimpWin software. Besides, the mathematical relations between the impedance, phase angle and the area of the electrode were interpreted for the fabricated impedimetric sensors. Later on, a real blood sample was also characterized to demonstrate the feasibility and the validity of the proposed technique and the fabricated devices in cell diagnosis.
在这项工作中,我们设计、制造和表征了一种优化的、非侵入式的四电极阻抗传感器,用于测量生物细胞的阻抗。该阻抗传感器采用金作为电极材料,通过光刻技术制造了四个单极电极。此外,我们使用 COMSOL Multiphysics 软件对不同参数(包括施加电压、PBS 厚度和直径)进行了优化,模拟了电解质/电极界面的阻抗,频率范围为 100 Hz 至 1 MHz。接下来,我们使用电化学阻抗谱(EIS)技术对所制造器件的阻抗进行了实验测量。然后,我们将 COMSOL 数据与从所制造器件获得的阻抗进行了对比,以验证传感器的可行性和误差百分比(RSE<5%)。我们使用 ZsimpWin 软件获得了用于测量 PBS 阻抗数据的等效电路模型。此外,我们还解释了所制造的阻抗传感器中阻抗、相位角和电极面积之间的数学关系。之后,我们还对实际的血液样本进行了表征,以证明所提出的技术和所制造的设备在细胞诊断中的可行性和有效性。