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调控电渗微泵中胶体颗粒的聚集

Regulating the aggregation of colloidal particles in an electro-osmotic micropump.

作者信息

Zhang Zhu, de Graaf Joost, Faez Sanli

机构信息

Nanophotonics, Debye Institute for Nanomaterials Science, Utrecht University, Princetonplein 1, 3584 CC Utrecht, The Netherlands.

出版信息

Soft Matter. 2020 Dec 16;16(47):10707-10715. doi: 10.1039/d0sm01084g.

Abstract

Unrestricted particle transport through microfluidic channels is of paramount importance to a wide range of applications, including lab-on-a-chip devices. In this article, we study via video microscopy the electro-osmotic aggregation of colloidal particles at the opening of a micrometer-sized silica channel in the presence of a salt gradient. Particle aggregation eventually leads to clogging of the channel, which may be undone by a time-adjusted reversal of the applied electric potential. We numerically model our system via the Stokes-Poisson-Nernst-Planck equations in a geometry that approximates the real sample. This allows us to identify the transport processes induced by the electric field and salt gradient and to provide evidence that a balance thereof leads to aggregation. We further demonstrate experimentally that a net flow of colloids through the channel may be achieved by applying a square-waveform electric potential with an appropriately tuned duty cycle. Our results serve to guide the design of microfluidic and nanofluidic pumps that allow for controlled particle transport and provide new insights for anti-fouling in ultra-filtration.

摘要

对于包括芯片实验室设备在内的广泛应用而言,微流体通道中不受限制的粒子传输至关重要。在本文中,我们通过视频显微镜研究了在存在盐梯度的情况下,微米级二氧化硅通道开口处胶体粒子的电渗聚集。粒子聚集最终会导致通道堵塞,而通过对施加电势进行时间调整的反转,这种堵塞可能会被消除。我们通过斯托克斯 - 泊松 - 能斯特 - 普朗克方程在近似真实样品的几何结构中对我们的系统进行数值建模。这使我们能够识别由电场和盐梯度引起的传输过程,并提供证据表明它们之间的平衡会导致聚集。我们还通过实验证明,通过施加具有适当调整占空比的方波电势,可以实现胶体通过通道的净流动。我们的结果有助于指导允许控制粒子传输的微流体和纳流体泵的设计,并为超滤中的防污提供新的见解。

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