微流控芯片的结构优化及电动力学模拟研究。

IF 10.5 Q1 ENGINEERING, BIOMEDICAL
Cyborg and bionic systems (Washington, D.C.) Pub Date : 2025-03-06 eCollection Date: 2025-01-01 DOI:10.34133/cbsystems.0217
Yanfeng Zhao, Zhiqiang Zheng, Jiaxin Liu, Xinyi Dong, Haotian Yang, Anping Wu, Qing Shi, Huaping Wang
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引用次数: 0

摘要

数字微流控芯片(dmc)由于其出色的液滴操作能力,在生化分析方面显示出巨大的应用潜力。驱动力是表征和优化液滴操纵性能的关键因素。在DMC设计中,驱动力的数值分析有助于优化结构参数。尽管在数值分析方面取得了进步,但评估部分填充电极的驱动力仍然具有挑战性。在此,我们提出了一个通用的电动力学仿真模型,旨在分析部分填充电极的驱动力,以优化dmc的结构参数。该模型利用有限元分析来确定DMC内部的电压分布,并利用虚功原理计算作用在液滴上的驱动力。利用该电动力学仿真模型,我们评估了各种结构参数,包括介电常数和介电层厚度,液滴的介电常数和电导率以及衬底间距对液滴驱动力的影响。该评价有助于优化dmc的结构参数,提高dmc的液滴操控能力。液滴加速度测量结果表明,部分填充电极上的液滴加速度与模拟的驱动力趋势一致,验证了所建电动力学仿真模型的有效性。我们期望电动力学仿真模型能够评估复杂dmc中部分填充电极的驱动力,为未来dmc的结构设计提供前所未有的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural Optimization of Microfluidic Chips for Enhancing Droplet Manipulation and Observation via Electrodynamics Simulation.

Digital microfluidic chips (DMCs) have shown huge potential for biochemical analysis applications due to their excellent droplet manipulation capabilities. The driving force is a critical factor for characterizing and optimizing the performance of droplet manipulation. Conducting numerical analysis of the driving force is essential for DMC design, as it helps optimize the structural parameters. Despite advances in numerical analysis, evaluating driving forces in partially filled electrodes remains challenging. Here, we propose a versatile electrodynamics simulation model designed to analyze the driving forces of partially filled electrodes to optimize the structural parameters of DMCs. This model utilizes finite element analysis to determine the voltage distribution within the DMC and calculates the driving force acting on the droplets using the principles of virtual work. Using this electrodynamics simulation model, we evaluated the effects of various structural parameters, including the dielectric constant and thickness of the dielectric layer, the dielectric constant and conductivity of the droplet, and substrate spacing, on the droplet driving force. This evaluation helps to optimize the structural parameters and enhances the droplet manipulation of DMCs. Measurements of droplet acceleration demonstrated that the droplet acceleration on the partially filled electrode aligns with the simulated driving force trend, which verified the effectiveness of the proposed electrodynamics simulation model. We anticipate that the electrodynamics simulation model is capable of evaluating the driving force in partially filled electrodes within complex DMCs, offering unprecedented possibilities for future structural designs of DMCs.

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来源期刊
CiteScore
7.70
自引率
0.00%
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审稿时长
21 weeks
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