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直流电泳驱动流下用于生物样品制备的颗粒和分子种类混合物的正交光力分离模拟。

Orthogonal optical force separation simulation of particle and molecular species mixtures under direct current electroosmotic driven flow for applications in biological sample preparation.

机构信息

Naval Research Laboratory, Washington, DC 20375, USA.

出版信息

Electrophoresis. 2013 Apr;34(8):1175-81. doi: 10.1002/elps.201200553. Epub 2013 Mar 15.

Abstract

Presented here are the results from numerical simulations applying optical forces orthogonally to electroosmotically induced flow containing both molecular species and particles. Simulations were conducted using COMSOL v4.2a Multiphysics® software including the particle tracking module. The study addresses the application of optical forces to selectively remove particulates from a mixed sample stream that also includes molecular species in a pinched flow microfluidic device. This study explores the optimization of microfluidic cell geometry, magnitude of the applied direct current electric field, EOF rate, diffusion, and magnitude of the applied optical forces. The optimized equilibrium of these various contributing factors aids in the development of experimental conditions and geometry for future experimentation as well as directing experimental expectations, such as diffusional losses, separation resolution, and percent yield. The result of this work generated an optimized geometry with flow conditions leading to negligible diffusional losses of the molecular species while also being able to produce particle removal at near 100% levels. An analytical device, such as the one described herein with the capability to separate particulate and molecular species in a continuous, high-throughput fashion would be valuable by minimizing sample preparation and integrating gross sample collection seamlessly into traditional analytical detection methods.

摘要

本文呈现了数值模拟的结果,这些模拟应用了正交于电渗流的光学力,其中包含了两种分子物种和颗粒。模拟使用 COMSOL v4.2a Multiphysics®软件进行,包括颗粒跟踪模块。该研究探讨了在微流控芯片设备中,应用光学力选择性地从包含分子物种的混合样品流中去除颗粒的应用。本研究探索了微流控单元几何形状、施加的直流电场强度、EOF 速率、扩散和施加的光学力大小的优化。这些各种因素的最佳平衡有助于开发未来实验的实验条件和几何形状,并指导实验预期,如扩散损失、分离分辨率和产率百分比。这项工作的结果生成了一个优化的几何形状和流动条件,导致分子物种的扩散损失可忽略不计,同时还能够实现近 100%水平的颗粒去除。这样一种具有连续、高通量分离颗粒和分子物种能力的分析装置,通过最小化样品制备并将大量样品收集无缝集成到传统分析检测方法中,将具有很高的价值。

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