Advanced Course, Project Design Engineering, National Institute of Technology (KOSEN), Kure College, 2-2-11, Aga-Minami, Kure, Hiroshima 737-8506, Japan.
Department of Electrical Engineering and Information Science, National Institute of Technology (KOSEN), Kure College, 2-2-11, Aga-Minami, Kure, Hiroshima 737-8506, Japan.
Sensors (Basel). 2022 Feb 16;22(4):1533. doi: 10.3390/s22041533.
Many dielectrophoretic (DEP) devices for biomedical application have been suggested, such as the separation, concentration, and detection of biological cells or molecules. Most of these devices utilize the difference in their DEP properties. However, single-cell analysis is required to evaluate individual properties. Therefore, this paper proposed a modified isomotive insulator-based DEP (iDEP) creek-gap device for straightforward single-cell analysis, which is capable of measurement at a wide frequency band. The proposed iDEP device generates more constant particle velocity than the previous study. The insulator was fabricated using backside exposure for accurate forming. We measured the distribution of the particle velocity and frequency property, using homogeneous polystyrene particles to verify the effectiveness of the proposed device. The results show that the particle velocity distribution was consistent with the distribution of the numerically calculated electric field square (∇Erms2). Furthermore, the velocity measurement, at a wide frequency band, from 10 Hz to 20 MHz, was performed because of the long distance between electrodes. These results suggest that the prop-erties of various particles or cells can be obtained by simple measurement using the proposed device.
许多用于生物医学应用的介电泳(DEP)设备已经被提出,例如生物细胞或分子的分离、浓缩和检测。这些设备大多利用它们的介电泳特性的差异。然而,单细胞分析需要评估个体特性。因此,本文提出了一种改进的基于等动绝缘体的介电泳(iDEP)溪谷装置,用于直接的单细胞分析,能够在宽频带内进行测量。所提出的 iDEP 装置产生的粒子速度比以前的研究更恒定。绝缘体采用背面曝光制造,以实现精确成型。我们使用均匀的聚苯乙烯粒子测量粒子速度和频率特性的分布,以验证所提出设备的有效性。结果表明,粒子速度分布与数值计算的电场平方(∇Erms2)分布一致。此外,由于电极之间的距离较长,因此可以在 10 Hz 至 20 MHz 的宽频带内进行速度测量。这些结果表明,通过使用所提出的设备进行简单的测量,可以获得各种粒子或细胞的特性。