基于介电泳的纳米颗粒“病毒”分离微流体

Hamdy Abdelhamid, I. Khalaf, A. Hussien, Reda Abdelbaset
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引用次数: 0

摘要

本文的目的是通过介质电泳的概念提供一个微流控平台,可以用于操作和表征不同的亚微米颗粒,如乳胶球以及病毒(例如SARS-COV-2)。最近对基于微流控技术的诊断芯片的研究在医疗保健和家庭中具有明显的意义,在抗击COVID-19大流行方面也非常突出:冠状病毒病2019 (COVID-19)是由严重急性呼吸综合征冠状病毒2 (SARS-CoV-2)引起的新型人类传染病,早期诊断和管理对于控制疫情至关重要。本文报道了一种用于分离不同病毒混合物的微流控装置。使用适当的微流体通道、流速、微电极阵列和电压设置,颗粒可以在高或低电场区域之间被捕获或移动。介电作用在粒子上的力的大小和方向取决于流体和粒子的有效介电性质,因此,可以将不均匀的粒子混合物分离出来,以产生更均匀的种群。本文演示了纳米颗粒的可控分离。采用上下电极阵列,可以实现不同类型的亚微米乳胶珠的空间分离。分离的发生是由于介电力和阻力在不同粒子群上的大小和方向不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dielectrophoretic based Microfluidic for nanoparticles “viruses” separation
The objective of this paper is to provide a microfluidic platform that may be useful to manipulate and characterize different submicron particles such as latex spheres as well as viruses (E.g. SARS-COV-2) through the concept of dielectrophoresis. The significance of recent research towards microfluidics-based diagnostic chips is apparent in health care, in our homes, and also very prominently in the fight against the COVID 19 pandemic: Coronavirus disease 2019 (COVID-19) is a newly emerging human infectious disease caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), early diagnosis and management are crucial for containing the outbreak. Here, we report a microfluidic device for separating mixture of different viruses. Using appropriate microfluidic channels, flow velocity, microelectrode arrays and voltage settings, particles can be trapped or moved between regions of high or low electric fields. The magnitude and direction of the dielectrophoretic force on the particle depends on the effective dielectric properties of fluid and particles, so that a heterogeneous mixture of particles can be separated to produce a more homogeneous population. In this paper the controlled separation of nanoparticles is demonstrated. With upper and lower electrode arrays, it is shown that different types of submicron latex beads can be spatially separated. The separation occurs because of differences in magnitude and direction of the dielectrophoretic force and drag force on different populations of particles.
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