EventsThe 12th International Electronic Conference on Sensors and Applications
Published
This submission belongs to the session S1. Chemo- and Biosensors of the event The 12th International Electronic Conference on Sensors and Applications
Published date
07 Nov, 2025
Academic Editor
author-avatarStefano Mariani
Citation
Tieying Xu, Shengzhi Ji, Huancheng Zhang, Zhiyang Hu, Optimized Electrode Configurations for Multi-Parameter Detection in Microfluidic Impedance Cytometry, in Proceedings of The 12th International Electronic Conference on Sensors and Applications, 12 November–14 November 2025, MDPI: Basel, Switzerland, doi: 10.3390/ECSA-12-26486
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Optimized Electrode Configurations for Multi-Parameter Detection in Microfluidic Impedance Cytometry

Huancheng Zhang 1
Zhiyang Hu 1
1. School of Microelectronics, Shanghai University, Shanghai, China, China
Abstract

Microfluidic impedance cytometry enables label-free and real-time single-cell analysis by detecting changes in electrical impedance as cells traverse microchannels. Electrode configuration plays a critical role in determining detection sensitivity, signal quality, and spatial resolution. In this study, finite element simulations were conducted to model the impedance response of mammalian red blood cells under various electrode designs, including coplanar, parallel, tilted, and parabolic configurations, as well as electrode layouts coupled with flow velocity. A multiphysics simulation model is established to analyze the effects of geometric parameters on electric field distribution and impedance response. The results demonstrate that optimized electrode arrangements significantly enhance detection performance and enable multi-parameter analysis. Furthermore, the influence of flow dynamics and dielectric properties on impedance signals is explored. These findings provide both theoretical and experimental guidance for the development of high-efficiency, integrated impedance cytometry platforms, contributing to the advancement of microfluidic systems in biomedical diagnostics and single-cell characterization.

Keywords
microfluidics
impedance detection
electrode configuration
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