Suppr超能文献

利用感应电荷动电学实现微纳米颗粒的连续流捕获和局部浓缩。

Continuous-flow trapping and localized enrichment of micro- and nano-particles using induced-charge electrokinetics.

机构信息

Key Laboratory of Thermo-Fluid Science and Engineering of MOE, Xi'an Jiaotong University, Xi'an, 710049, China.

School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore, 639798, Singapore.

出版信息

Soft Matter. 2018 Feb 14;14(6):1056-1066. doi: 10.1039/c7sm01744h. Epub 2018 Jan 16.

Abstract

In this work, we report an effective microfluidic technique for continuous-flow trapping and localized enrichment of micro- and nano-particles by using induced-charge electrokinetic (ICEK) phenomena. The proposed technique utilizes a simple microfluidic device that consists of a straight microchannel and a conducting strip attached to the bottom wall of the microchannel. Upon application of the electric field along the microchannel, the conducting strip becomes polarized to introduce two types of ICEK phenomena, the ICEK flow vortex and particle dielectrophoresis, and they are identified by a theoretical model formulated in this study to be jointly responsible for the trapping of particles over the edge of the conducting strip. Our experiments showed that successful trapping requires an AC/DC combined electric field: the DC component is mainly to induce electroosmotic flow for transporting particles to the trapping location; the AC component induces ICEK phenomena over the edge of the conducting strip for particle trapping. The performance of the technique is examined with respect to the applied electric voltage, AC frequency and the particle size. We observed that the trapped particles form a narrow band (nearly a straight line) defined by the edge of the conducting strip, thereby allowing localized particle enrichment. For instance, we found that under certain conditions a high particle enrichment ratio of 200 was achieved within 30 seconds. We also demonstrated that the proposed technique was able to trap particles from several microns down to several tens of nanometer. We believe that the proposed ICEK trapping would have great flexibility that the trapping location can be readily varied by controlling the location of the patterned conducting strip and multiple-location trapping can be expected with the use of multiple conducting strips.

摘要

在这项工作中,我们报告了一种有效的微流控技术,用于通过感应电荷电动(ICEK)现象连续流动捕获和局部浓缩微纳米颗粒。所提出的技术利用了一个简单的微流控装置,该装置由一个直的微通道和一个附着在微通道底壁上的导电条组成。当沿微通道施加电场时,导电条被极化以引入两种类型的 ICEK 现象,ICEK 流涡和颗粒介电泳,它们通过本研究中制定的理论模型被确定为共同负责在导电条边缘捕获颗粒。我们的实验表明,成功的捕获需要交流/直流组合电场:直流分量主要用于感应电渗流以将颗粒输送到捕获位置;交流分量在导电条的边缘感应 ICEK 现象以捕获颗粒。该技术的性能通过施加的电压、交流频率和颗粒尺寸进行了检查。我们观察到,捕获的颗粒形成了一条由导电条边缘定义的窄带(几乎是一条直线),从而允许局部浓缩颗粒。例如,我们发现,在某些条件下,在 30 秒内实现了高达 200 的高颗粒浓缩比。我们还证明,所提出的技术能够捕获从几微米到几十纳米的颗粒。我们相信,所提出的 ICEK 捕获将具有很大的灵活性,通过控制图案化导电条的位置可以很容易地改变捕获位置,并且可以使用多个导电条来实现多位置捕获。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验