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一种微制造的电SPLITT系统。

A microfabricated electrical SPLITT system.

作者信息

Narayanan Nithin, Saldanha Avinash, Gale Bruce K

机构信息

Utah State Center of Excellence for Biomedical Microfluidics, 50 South Central Campus Drive, Room 2240, Department of Mechanical Engineering, University of Utah, Salt Lake City, UT 84116, USA.

出版信息

Lab Chip. 2006 Jan;6(1):105-14. doi: 10.1039/b504936a. Epub 2005 Dec 5.

Abstract

A growing need for methods to analyze and prepare monodisperse nanoparticles on an industrial scale exists and may be solved by the application of split flow thin fractionation (SPLITT) at the microscale. Microfluidic systems of this type have the ability to separate nanoparticles with high precision in a continuous manner. A miniaturized SPLITT system can be fabricated using standard microfabrication technologies, works in a continuous mode, and can be used as a sample preparation instrument in a micro-total-analysis-system (micro-TAS). In this paper, a miniaturized electrical SPLITT system, which separates particles continuously based on electrophoretic mobility, has been characterized. The advantages of miniaturization have been elucidated. The various aspects of the micro SPLITT system discussed in this paper can be broadly classified into: micro SPLITT system design, fluidics modeling to refine the splitter arrangements, and experimental characterization of the SPLITT system. The design of the micro SPLITT system has been elucidated focusing on the two designs that were implemented. Fluid modeling, used to arrive at a new SPLITT design, was done using a commercially available CFD package to investigate behavior of the fluid in the microchannel with various splitter arrangements. Testing was done with nanoparticles of varying diameter and electrophoretic mobilities to verify the modeling results and demonstrate functionality of the SPLITT system. Particles eluted from both outlets of the SPLITT system were characterized using AFM and SEM to verify the function of the system.

摘要

在工业规模上分析和制备单分散纳米颗粒的方法需求日益增长,而通过在微尺度上应用分流薄层分级法(SPLITT)或许可以解决这一问题。此类微流体系统能够以连续方式高精度分离纳米颗粒。小型化的SPLITT系统可利用标准微加工技术制造,以连续模式工作,并且可在微全分析系统(μ-TAS)中用作样品制备仪器。本文对一种基于电泳迁移率连续分离颗粒的小型化电动SPLITT系统进行了表征。阐明了小型化的优势。本文讨论的微SPLITT系统的各个方面可大致分为:微SPLITT系统设计、用于优化分流器布置的流体动力学建模以及SPLITT系统的实验表征。重点围绕已实施的两种设计对微SPLITT系统的设计进行了阐述。为得出一种新的SPLITT设计而进行的流体建模,是使用商用计算流体动力学(CFD)软件包来研究具有不同分流器布置的微通道中流体的行为。使用不同直径和电泳迁移率的纳米颗粒进行测试,以验证建模结果并展示SPLITT系统的功能。使用原子力显微镜(AFM)和扫描电子显微镜(SEM)对从SPLITT系统两个出口洗脱的颗粒进行表征,以验证该系统的功能。

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