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Deterministic Absolute Negative Mobility for Micro- and Submicrometer Particles Induced in a Microfluidic Device

机译:微流体装置中诱导的微米和亚微米颗粒的确定性绝对负迁移率。

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摘要

Efficient separations of particles with micron and submicron dimensions are extremely useful in preparation and analysis of materials for nanotechnological and biological applications. Here, we demonstrate a nonintuitive, yet efficient, separation mechanism for µm and subµm colloidal particles and organelles, taking advantage of particle transport in a nonlinear post array in a microfluidic device under the periodic action of electrokinetic and dielectrophoretic forces. We reveal regimes in which deterministic particle migration opposite to the average applied force occurs for a larger particle, a typical signature of deterministic absolute negative mobility (dANM), whereas normal response is obtained for smaller particles. The coexistence of dANM and normal migration was characterized and optimized in numerical modeling and subsequently implemented in a microfluidic device demonstrating at least 2 orders of magnitude higher migration speeds as compared to previous ANM systems. We also induce dANM for mouse liver mitochondria and envision that the separation mechanisms described here provide size selectivity required in future separations of organelles, nanoparticles, and protein nanocrystals.
机译:有效分离具有微米和亚微米尺寸的颗粒对于制备和分析用于纳米技术和生物学应用的材料非常有用。在这里,我们展示了一种微米级和亚微米级胶体颗粒和细胞器的非直观但有效的分离机制,该方法利用了在电动和介电泳力周期性作用下微流体装置中非线性柱阵列中的颗粒运输优势。我们揭示了一种机制,其中较大颗粒是与平均施加力相反的确定性颗粒迁移,这是确定性绝对负迁移率(dANM)的典型特征,而较小颗粒可获得正常响应。 dANM和正常迁移的共存在数值建模中得到了表征和优化,随后在微流体装置中实现,与以前的ANM系统相比,其迁移速度至少高出两个数量级。我们还诱导小鼠肝线粒体的dANM,并设想这里描述的分离机制提供了未来细胞器,纳米颗粒和蛋白质纳米晶体分离所需的尺寸选择性。

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