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Recent Advances in Dielectrophoretic Manipulation and Separation of Microparticles and Biological Cells

Biosensors 2024 21 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 55 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Kai Zhao Junzhu Yao, Junzhu Yao, Kai Zhao Kai Zhao Kai Zhao Kai Zhao Jia Lou, Jia Lou, Junzhu Yao, Kaihuan Zhang, Kaihuan Zhang, Junzhu Yao, Junzhu Yao, Junzhu Yao, Kai Zhao

Summary

This review covers recent advances in using dielectrophoresis, an electric-field-based technique, to manipulate and separate tiny particles and biological cells in microfluidic devices. Researchers highlighted improvements in electrode design and device fabrication that enable higher-throughput and more selective particle sorting. The technology has promising applications in medical diagnostics, environmental monitoring, and biological research.

Dielectrophoresis (DEP) is an advanced microfluidic manipulation technique that is based on the interaction of polarized particles with the spatial gradient of a non-uniform electric field to achieve non-contact and highly selective manipulation of particles. In recent years, DEP has made remarkable progress in the field of microfluidics, and it has gradually transitioned from laboratory-scale research to high-throughput manipulation in practical applications. This paper reviews the recent advances in dielectric manipulation and separation of microparticles and biological cells and discusses in detail the design of chip structures for the two main methods, direct current dielectrophoresis (DC-DEP) and alternating current dielectrophoresis (AC-DEP). The working principles, technical implementation details, and other improved designs of electrode-based and insulator-based chips are summarized. Functional customization of DEP systems with specific capabilities, including separation, capture, purification, aggregation, and assembly of particles and cells, is then performed. The aim of this paper is to provide new ideas for the design of novel DEP micro/nano platforms with the desired high throughput for further development in practical applications.

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