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Emergent behavior in particle-laden microfluidic systems informs strategies for improving cell and particle separations

机译:载有粒子的微流体系统中的紧急行为表明了改善细胞和颗粒分离的策略

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摘要

Colloidal particles placed in an energy landscape interact with each other, giving rise to complex dynamic behavior that affects the ability to process and manipulate suspensions of these particles. Propagating across scales ranging from the local behavior of 10's of particles to non-local behavior encompassing >10[superscript 6] particles, these particle interactions are pervasive and challenging to describe quantitatively, especially in the confined environments typical of microfluidic devices. To better understand the effects of particle interactions in this context, we have performed experiments and simulations involving a simple microfluidic device in which hydrodynamic and electrostatic forces are leveraged to concentrate and separate particle mixtures. These investigations reveal the mechanisms underlying the dynamic patterns formed by micron-scale particles as they impinge on a dielectrophoretic force barrier: their tendency to aggregate and recirculate under constant operating conditions, and to reorganize when the operating conditions are changed. The emergent behaviors of these ensembles of interacting particles exhibit features of dynamical frustration and cooperativity that suggest non-intuitive strategies for concentrating and sorting suspensions. Finally, we present a simple analytic model based on hydrodynamic coupling that captures important features of strongly interacting particle suspensions.
机译:放置在能量图中的胶体粒子会相互影响,从而产生复杂的动态行为,从而影响处理和操纵这些粒子悬浮液的能力。这些尺度的相互作用在从10年代粒子的局部行为到包含> 10 [上标6]粒子的非局部行为的整个范围内传播,这些相互作用是普遍存在的,很难定量描述,特别是在微流体设备典型的密闭环境中。为了更好地了解这种情况下粒子相互作用的效果,我们进行了涉及简单的微流体装置的实验和模拟,其中利用了流体动力和静电力来浓缩和分离粒子混合物。这些研究揭示了微米级颗粒撞击介电泳力屏障时形成的动态模式的潜在机制:它们在恒定的工作条件下聚集和再循环的趋势,以及在工作条件发生变化时重新组织的趋势。这些相互作用的粒子集合的出现行为表现出动态挫折和协同作用的特征,这暗示了浓缩和分选悬浮液的非直观策略。最后,我们提出了一个基于流体动力学耦合的简单分析模型,该模型捕获了强相互作用颗粒悬浮液的重要特征。

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