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首页> 外文期刊>Analytical chemistry >Effect of Carrier Fluid Viscosity on Retention Time and Resolution in Gravitational Field-Flow Fractionation
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Effect of Carrier Fluid Viscosity on Retention Time and Resolution in Gravitational Field-Flow Fractionation

机译:载流粘度对重力场流分馏中保留时间和分离度的影响

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摘要

Gravitational field-flow fractionation (GrFFF) is a useful technique for fast separation of micrometer-sized particles. Different sized particles are carried at different velocities by a flow of fluid along an unobstructed thin channel, resulting in a size-based separation. They are confined to thin focused layers in the channel thickness where force due to gravity is exactly opposed by hydrodynamic lift forces (HLF). It has been reported that the HLF are a function of various parameters including the flow rate (or shear rate), the size of the particles, and the density and viscosity of the liquid. The dependence of HLF on these parameters offers a means of altering the equilibrium transverse positions of the particles in GrFFF, and hence their elution times. In this study, the effect of the viscosity of the carrier fluid on the elution behavior (retention, zone broadening, and resolution) of micrometer-sized particles in GrFFF was investigated using polystyrene (PS) latex beads as model particles. In order to change the carrier liquid viscosity without affecting its density, various amounts of (hydroxypropyl) methyl cellulose (HPMC) were added to the aqueous carrier liquid. It was found that particles migrate at faster rates as the carrier viscosity is increased, which confirms the dependence of HLF on viscosity. At the same time, particle size selectivity decreased but peak shape and symmetry for the more strongly retained particles improved. As a result, separation was improved in terms of both the separation time and resolution with increase of carrier viscosity. A theoretical model for plate height in GrFFF is also presented, and its predictions are compared to experimentally measured values.
机译:重力场流分级分离(GrFFF)是一种用于快速分离微米级颗粒的有用技术。沿着无阻碍的细通道的流体流以不同的速度携带不同尺寸的颗粒,从而导致基于尺寸的分离。它们被限制在通道厚度内的薄聚焦层上,其中重力引起的力与流体动力升力(HLF)正好相反。据报道,HLF是各种参数的函数,这些参数包括流速(或剪切速率),颗粒的尺寸以及液体的密度和粘度。 HLF对这些参数的依赖性提供了一种方法,可以改变GrFFF中颗粒的平衡横向位置,从而改变其洗脱时间。在这项研究中,使用聚苯乙烯(PS)乳胶珠作为模型颗粒,研究了载液粘度对GrFFF中微米级颗粒洗脱行为(保留,区域展宽和分离)的影响。为了改变载液粘度而不影响其密度,将各种量的(羟丙基)甲基纤维素(HPMC)添加到含水载液中。发现随着载体粘度增加,颗粒以更快的速率迁移,这证实了HLF对粘度的依赖性。同时,粒径选择性降低,但保留更强的颗粒的峰形和对称性得到改善。结果,随着载体粘度的增加,在分离时间和分离度方面都改善了分离。还提出了GrFFF中板高的理论模型,并将其预测值与实验测量值进行了比较。

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