粘弹性
魏森伯格数
聚合物
回转半径
材料科学
纳米技术
微流控
化学物理
粒子(生态学)
布朗运动
长度刻度
纳米颗粒
高分子
半径
粒径
聚苯乙烯
回转
化学
复合材料
机械
物理化学
几何学
物理
生物化学
海洋学
计算机安全
数学
量子力学
地质学
计算机科学
作者
Jae Young Kim,Sung Won Ahn,Sung Sik Lee,Ju Min Kim
出处
期刊:Lab on a Chip
[Royal Society of Chemistry]
日期:2012-01-01
卷期号:12 (16): 2807-2807
被引量:104
摘要
Much difficulty has been encountered in manipulating small-scale materials, such as submicron colloidal particles and macromolecules (e.g., DNA and proteins), in microfluidic devices since diffusion processes due to thermal (Brownian) motion become more pronounced with decreasing particle size. Here, we present a novel approach for the continuous focusing of such small-scale materials. First, we successfully focused fluorescent submicron polystyrene (PS) beads along equilibrium positions in microchannels through the addition of a small amount water-soluble polymer [500 ppm poly(ethylene oxide) (PEO)]. Lateral migration velocity significantly depends upon the viscoelastic effect (Weissenberg number: Wi) and the aspect ratio of particle size to channel height (a/h). Interestingly, focusing using viscoelastic flows was also observed for flexible DNA molecules (λ-DNA and T4-DNA), which have radii of gyration (R(g)) of approximately 0.69 μm and 1.5 μm, respectively. This small-scale material manipulation using medium viscoelasticity will contribute to the design of nanoparticle separation and genomic mapping devices.
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