On the design, functions, and biomedical applications of high-throughput dielectrophoretic micro-/nanoplatforms: a review

As an efficient, rapid and label-free micro-/nanoparticle separation technique, dielectrophoresis (DEP) has attracted widespread attention in recent years, especially in the field of biomedicine, which exhibits huge potential in biomedically relevant applications such as disease diagnosis, cancer ce...

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Veröffentlicht in:Nanoscale 2021-03, Vol.13 (8), p.433-4358
Hauptverfasser: Li, Yalin, Wang, Yan, Wan, Keming, Wu, Mingxue, Guo, Lei, Liu, Xiaomin, Wei, Gang
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container_end_page 4358
container_issue 8
container_start_page 433
container_title Nanoscale
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creator Li, Yalin
Wang, Yan
Wan, Keming
Wu, Mingxue
Guo, Lei
Liu, Xiaomin
Wei, Gang
description As an efficient, rapid and label-free micro-/nanoparticle separation technique, dielectrophoresis (DEP) has attracted widespread attention in recent years, especially in the field of biomedicine, which exhibits huge potential in biomedically relevant applications such as disease diagnosis, cancer cell screening, biosensing, and others. DEP technology has been greatly developed recently from the low-flux laboratory level to high-throughput practical applications. In this review, we summarize the recent progress of DEP technology in biomedical applications, including firstly the design of various types and materials of DEP electrode and flow channel, design of input signals, and other improved designs. Then, functional tailoring of DEP systems with endowed specific functions including separation, purification, capture, enrichment and connection of biosamples, as well as the integration of multifunctions, are demonstrated. After that, representative DEP biomedical application examples in aspects of disease detection, drug synthesis and screening, biosensing and cell positioning are presented. Finally, limitations of existing DEP platforms on biomedical application are discussed, in which emphasis is given to the impact of other electrodynamic effects such as electrophoresis (EP), electroosmosis (EO) and electrothermal (ET) effects on DEP efficiency. This article aims to provide new ideas for the design of novel DEP micro-/nanoplatforms with desirable high throughput toward application in the biomedical community. The design of high-throughput dielectrophoretic micro-/nanoplatforms exhibits potential biomedical applications.
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DEP technology has been greatly developed recently from the low-flux laboratory level to high-throughput practical applications. In this review, we summarize the recent progress of DEP technology in biomedical applications, including firstly the design of various types and materials of DEP electrode and flow channel, design of input signals, and other improved designs. Then, functional tailoring of DEP systems with endowed specific functions including separation, purification, capture, enrichment and connection of biosamples, as well as the integration of multifunctions, are demonstrated. After that, representative DEP biomedical application examples in aspects of disease detection, drug synthesis and screening, biosensing and cell positioning are presented. 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source MEDLINE; Royal Society Of Chemistry Journals 2008-
subjects Biomedical materials
Cell Separation
Dielectrophoresis
Electrodes
Electroosmosis
Electrophoresis
Functionals
Nanoparticles
Screening
Separation
title On the design, functions, and biomedical applications of high-throughput dielectrophoretic micro-/nanoplatforms: a review
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