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Field-Flow Fractionation and Hydrodynamic Chromatography on a Microfluidic Chip

机译:微流控芯片上的场流分馏和流体动力学色谱

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We present gravitational field-flow fractionation and hydrodynamic chromatography of colloids eluting through 18 μm microchannels. Using video microscopy and mesoscopic simulations, we investigate the average retention ratio of colloids with both a large specific weight and neutral buoyancy. We consider the entire range of colloid sizes, including particles that barely fit in the microchannel and nanoscopic particles. Ideal theory predicts four operational modes, from hydrodynamic chromatography to Faxen-mode field-flow fractionation. We experimentally demonstrate, for the first time, the existence of the Faxen-mode field-flow fractionation and the transition from hydrodynamic chromatography to normal-mode field-flow fractionation. Furthermore, video microscopy and simulations show that the retention ratios are largely reduced above the steric-inversion point, causing the variation of the retention ratio in the steric- and Faxen-mode regimes to be suppressed due to increased drag. We demonstrate that theory can accurately predict retention ratios if hydrodynamic interactions with the microchannel walls (wall drag) are added to the ideal theory. Rather than limiting the applicability, these effects allow the microfluidic channel size to be tuned to ensure high selectivity. Our findings indicate that particle velocimetry methods must account for the wall-induced lag when determining flow rates in highly confining systems.
机译:我们介绍了通过18μm微通道洗脱的胶体的重力场流分级分离和流体力学色谱。使用视频显微镜和介观模拟,我们调查了具有较大比重和中性浮力的胶体的平均保留率。我们考虑了整个胶体尺寸范围,包括勉强适合微通道和纳米级颗粒的颗粒。理想理论预测了四种操作模式,从流体动力学色谱到法肯模式场流分馏。我们通过实验首次证明了Faxen模式场流分级分离的存在以及从流体动力学色谱到正常模式场流分级分离的过渡。此外,视频显微镜和模拟显示,保留比在立体反转点以上大大降低,从而由于阻力增加而抑制了在立体模式和Faxen模式下的保留比变化。我们证明,如果将与微通道壁的流体动力相互作用(壁阻力)添加到理想理论中,则该理论可以准确地预测保留率。这些作用而不是限制适用性,而是允许微流通道尺寸进行调整以确保高选择性。我们的发现表明,在确定高度封闭的系统中的流速时,粒子测速法必须考虑壁引起的滞后。

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