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用于在薄电渗微泵中进行纳流定量的连通液滴形状分析及可调凸面镜应用。

Connected Droplet Shape Analysis for Nanoflow Quantification in Thin Electroosmotic Micropumps and a Tunable Convex Lens Application.

机构信息

Department of Mechanical and Industrial Engineering, University of Illinois at Chicago, Chicago, Illinois 60607, United States.

出版信息

Langmuir. 2023 Feb 21;39(7):2569-2578. doi: 10.1021/acs.langmuir.2c02875. Epub 2023 Feb 10.

Abstract

Thin electroosmotic flow (EOF) micropumps can generate flow in confined spaces such as lab-on-a-chip microsystems and implantable drug delivery devices. However, status quo methods for quantifying flow and other important parameters in EOF micropumps depend on microfluidic interconnects or fluorescent particle tracking: methods that can be complex and error-prone. Here, we present a novel connected droplet shape analysis (CDSA) technique that simplifies flow rate and zeta potential quantification in thin EOF micropumps. We also show that a pair of droplets connected by an EOF pump can function as a tunable convex lens system (TCLS). We developed a biocompatible and all polymer EOF micropump with an SU-8 substrate and poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) electrodes. We microdrilled a channel through the electrode/SU-8/electrode layers to realize a monolithic EOF micropump. Then, we deposited a pinned droplet on each end of the microchannel so that it connected them. By controlling the EOF between the droplets and measuring the corresponding change in their shape, we quantified the nanoliter EOF rate and zeta potential at the interface of SU-8 with two liquids (deionized water and a l-glutamate neurotransmitter solution). When the droplet pair and pump were used as a TCLS, CDSA successfully predicted how the focal length would change when the pump drove fluid from one droplet to another. In summary, CDSA is a simple low-cost technique for EOF rate and zeta potential measurement, and a pair of droplets connected by an EOF micropump can function as a TCLS without any moving parts.

摘要

薄电渗流 (EOF) 微泵可以在微流控芯片系统和植入式药物输送装置等受限空间中产生流动。然而,EOF 微泵中流量和其他重要参数的定量现状方法依赖于微流道互连或荧光粒子跟踪:这些方法可能复杂且容易出错。在这里,我们提出了一种新颖的连接液滴形状分析 (CDSA) 技术,该技术简化了薄 EOF 微泵中的流速和 Zeta 电位定量。我们还表明,EOF 泵连接的一对液滴可以充当可调谐凸面透镜系统 (TCLS)。我们开发了一种具有 SU-8 基板和聚 (3,4-亚乙基二氧噻吩) 聚苯乙烯磺酸盐 (PEDOT:PSS) 电极的生物相容性全聚合物 EOF 微泵。我们通过电极/SU-8/电极层微钻一个通道,实现了单片 EOF 微泵。然后,我们在微通道的每一端沉积一个固定的液滴,使它们相连。通过控制液滴之间的 EOF 并测量它们形状的相应变化,我们量化了 SU-8 与两种液体(去离子水和 l-谷氨酸神经递质溶液)界面处的纳升级 EOF 速率和 Zeta 电位。当液滴对和泵用作 TCLS 时,CDSA 成功预测了当泵将流体从一个液滴驱动到另一个液滴时焦距如何变化。总之,CDSA 是一种用于 EOF 速率和 Zeta 电位测量的简单、低成本技术,EOF 微泵连接的一对液滴可以充当 TCLS,而无需任何运动部件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dfe5/9949215/4edf116f9150/la2c02875_0002.jpg

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