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A Vacuum-Integrated Centrifugal Microfluidic Chip for Density-Based Separation of Microparticles

机译:一种真空综合的离心微流体芯片,用于密度的微粒分离

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Here we present a new vacuum-integrated centrifugal microfluidic chip for the density-based separation of microparticles. A sample was loaded in a fluidic channel using the gas permeability feature of polydimethylsiloxane (PDMS) membrane between fluidic and control channels. Vacuum was applied from control channel to drive a density media and then the sample containing microparticles in the dead-end fluidic channel. Afterwards, the chip was disconnected from the vacuum and it was centrifugated. If the sample contains microparticles denser than the density media, the microparticles are sedimented at the end of the microfluidic channel so that these particles can be separated from remaining the lower density particles. With this approach, we separated 1.09 g/mL microparticles with 82,6% efficiency and 99% purity from 1.02 g/mL microparticles. Separated particles in the microfluidic chip can also be inspected under a microscope for further analysis. This simple approach offers high efficient density-based separation of microparticles with close densities.
机译:在这里,我们提出了一种新的真空综合离心微流体芯片,用于密度的微粒分离。使用流体和控制通道之间的聚二甲基硅氧烷(PDMS)膜的气体渗透特征在流体通道中装载样品。从控制通道施加真空以驱动密度培养基,然后在死端流体通道中含有微粒的样品。然后,将芯片与真空断开,并离心。如果样品含有微粒密度小于密度培养基,则微粒在微流体通道的末端沉淀,使得这些颗粒可以与剩余的较低密度颗粒分离。通过这种方法,我们将1.09g / ml微粒分离,效率为1.09克/ mL微粒和从1.02g / ml微粒的99%纯度。在显微镜下也可以检查微流体芯片中的分离的颗粒以进一步分析。这种简单的方法提供了高效的基于密度的微粒分离,具有密度密度。

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