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芯片上漂浮液滴内蒸发诱导的颗粒微分离

Evaporation-induced particle microseparations inside droplets floating on a chip.

作者信息

Chang Suk Tai, Velev Orlin D

机构信息

Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, North Carolina 27695, USA.

出版信息

Langmuir. 2006 Feb 14;22(4):1459-68. doi: 10.1021/la052695t.

Abstract

We describe phenomena of colloidal particle transport and separation inside single microdroplets of water floating on the surface of dense fluorinated oil. The experiments were performed on microfluidic chips, where single droplets were manipulated with alternating electric fields applied to arrays of electrodes below the oil. The particles suspended in the droplets were collected in their top region during the evaporation process. Experimental results and numerical simulations show that this microsepration occurs as a result of a series of processes driven by mass and heat transfer. An interfacial tension gradient develops on the surface of the droplet as a result of the nonuniform temperature distribution during the evaporation. This gradient generates an internal convective Marangoni flow. The colloidal particles transported by the flow are collected in the top of the droplets by the hydrodynamic flux, compensating for evaporation through the exposed top surface. The internal flow pattern and temperature distribution within evaporating droplets were simulated using finite element calculations. The results of the simulation were consistent with experiments using tracer particles. Such microseparation processes can be used for on-chip synthesis of advanced particles and innovative microbioassays.

摘要

我们描述了漂浮在致密氟化油表面的单个水滴内部胶体颗粒的传输和分离现象。实验在微流控芯片上进行,通过施加在油下方电极阵列上的交变电场来操控单个水滴。在蒸发过程中,悬浮在水滴中的颗粒聚集在其顶部区域。实验结果和数值模拟表明,这种微分离是由一系列质量和热传递驱动的过程导致的。由于蒸发过程中温度分布不均匀,水滴表面会形成界面张力梯度。这个梯度会产生内部对流马兰戈尼流。由该流动传输的胶体颗粒通过流体动力通量聚集在水滴顶部,从而补偿通过暴露的顶部表面的蒸发。使用有限元计算模拟了蒸发水滴内部的流动模式和温度分布。模拟结果与使用示踪颗粒的实验结果一致。这种微分离过程可用于片上合成先进颗粒和创新的微生物检测。

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