Dave C. Swalm School of Chemical Engineering, Mississippi State University, Starkville, MS 39762, USA.
Anal Bioanal Chem. 2011 Jan;399(1):301-21. doi: 10.1007/s00216-010-4222-6. Epub 2010 Oct 22.
Dielectrophoresis is a noninvasive, nondestructive, inexpensive, and fast technique for the manipulation of bioparticles. Recent advances in the field of dielectrophoresis (DEP) have resulted in new approaches for characterizing the behavior of particles and cells using direct current (DC) electric fields. In such approaches, spatial nonuniformities are created in the channel by embedding insulating obstacles in the channel or flow field in order to perform separation or trapping. This emerging field of dielectrophoresis is commonly termed DC insulator dielectrophoresis (DC-iDEP), insulator-based dielectrophoresis (iDEP), or electrodeless dielectrophoresis (eDEP). In many microdevices, this form of dielectrophoresis has advantages over traditional AC-DEP, including single material microfabrication, remotely positioned electrodes, and reduced fouling of the test region. DC-iDEP applications have included disease detection, separation of cancerous cells from normal cells, and separation of live from dead bacteria. However, there is a need for a critical report to integrate these important research findings. The aim of this review is to provide an overview of the current state-of-art technology in the field of DC-iDEP for the separation and trapping of inert particles and cells. In this article, a review of the concepts and theory leading to the manipulation of particles via DC-iDEP is given, and insulating obstacle geometry designs and the characterization of device performance are discussed. This review compiles and compares the significant findings obtained by researchers in handling and manipulating particles.
介电泳是一种非侵入性、非破坏性、低成本和快速的生物粒子操纵技术。介电泳领域的最新进展导致了使用直流 (DC) 电场来表征粒子和细胞行为的新方法。在这种方法中,通过在通道或流场中嵌入绝缘障碍物来在通道中创建空间不均匀性,以进行分离或捕获。这种新兴的介电泳领域通常被称为直流介电泳 (DC-iDEP)、基于绝缘体的介电泳 (iDEP) 或无电极介电泳 (eDEP)。在许多微器件中,这种形式的介电泳相对于传统的 AC-DEP 具有优势,包括单一材料微加工、远程定位电极以及测试区域的污染减少。DC-iDEP 的应用包括疾病检测、从正常细胞中分离癌细胞,以及分离活菌和死菌。然而,需要有一份批判性的报告来整合这些重要的研究发现。本文的目的是提供一个关于 DC-iDEP 在分离和捕获惰性粒子和细胞方面的最新技术的概述。本文综述了通过 DC-iDEP 操纵粒子的概念和理论,并讨论了绝缘障碍物几何设计和器件性能的表征。本综述汇总并比较了研究人员在处理和操纵粒子方面获得的重要发现。