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微纳制造技术在介电泳应用中的研究进展综述。

Microfabrication technologies in dielectrophoresis applications--a review.

机构信息

Laboratory of Microsystems-LMIS4, École Polytechnique Fédérale de Lausanne, Switzerland.

出版信息

Electrophoresis. 2012 Nov;33(21):3110-32. doi: 10.1002/elps.201200242. Epub 2012 Sep 3.

Abstract

DEP is an established technique for particle manipulation. Although first demonstrated in the 1950s, it was not until the development of miniaturization techniques in the 1990s that DEP became a popular research field. The 1990s saw an explosion of DEP publications using microfabricated metal electrode arrays to sort a wide variety of cells. The concurrent development of microfluidics enabled devices for flow management and better understanding of the interaction between hydrodynamic and electrokinetic forces. Starting in the 2000s, alternative techniques have arisen to overcome common problems in metal-electrode DEP, such as electrode fouling, and to increase the throughput of the system. Insulator-based DEP and light-induced DEP are the most significant examples. Most recently, new 3D techniques such as carbon-electrode DEP, contactless DEP, and the use of doped PDMS have further simplified the fabrication process. The constant desire of the community to develop practical solutions has led to devices which are more user friendly, less expensive, and are capable of higher throughput. The state-of-the-art of fabricating DEP devices is critically reviewed in this work. The focus is on how different fabrication techniques can boost the development of practical DEP devices to be used in different settings such as clinical cell sorting and infection diagnosis, industrial food safety, and enrichment of particle populations for drug development.

摘要

DEP 是一种成熟的粒子操纵技术。尽管它早在 20 世纪 50 年代就已被首次证明,但直到 20 世纪 90 年代微纳技术的发展,DEP 才成为一个热门的研究领域。在 90 年代,使用微制造金属电极阵列对各种细胞进行分类的 DEP 出版物如雨后春笋般涌现。同期微流控技术的发展为流动管理和更好地理解流体动力学和电动力学之间的相互作用提供了设备。从 21 世纪初开始,出现了替代技术来克服金属电极 DEP 的常见问题,例如电极污垢,并提高系统的吞吐量。基于绝缘体的 DEP 和光诱导 DEP 是最显著的例子。最近,新的 3D 技术,如碳电极 DEP、无接触 DEP 和掺杂 PDMS 的使用,进一步简化了制造工艺。社区不断渴望开发实用的解决方案,导致设备更易用、更便宜,并且能够实现更高的吞吐量。本工作对 DEP 器件的制造技术进行了全面的综述。重点介绍了不同的制造技术如何促进实用 DEP 器件的发展,以应用于不同的领域,如临床细胞分选和感染诊断、工业食品安全以及药物开发中颗粒群体的富集。

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