一对基于SAW装置的小体积样品粘度测量

IF 2.2 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Anjam Waheed;Kenji Sakamoto;Tsunemasa Saiki;Satoshi Amaya;Riyanarto Sarno;Tadao Matsunaga;Sang-Seok Lee
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引用次数: 0

摘要

本研究提出了一种利用一对表面声波装置测量小体积样品粘度的新方法。该方法实时、无创测量,并产生液体样品的旋转运动。为了验证所提出的方法,我们用蔗糖水溶液进行了实验。表面声波装置设计用于小样本量操作,并通过交叉换能器产生声波,提供对液体操作的精确控制。实验中,我们测试了0% ~ 30% w/v的蔗糖溶液,考察了浓度对液体粘度和动力学行为的影响。通过施加交变电压诱导液体样品的旋转运动,并使用图像分析软件分析由此产生的运动以计算角速度。实验系统还记录了不同浓度对应的共振频移。结果表明,蔗糖浓度的增加与粘度的增加之间存在明显的相关性。浓度越高,启动旋转所需的电压越大,导致旋转速度降低。角速度反比与溶液粘度之间存在较强的线性关系(R2 = 0.9618),证实了利用一对表面声波装置间接测量粘度的可行性。所提出的基于表面声波装置的系统提供了一种紧凑、高效和敏感的液体表征方法,在生物医学诊断、化学传感和芯片实验室平台中具有潜在的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Pair of SAW Devices-Based Viscosity Measurement for a Small Amount of Sample Volume
This research presents a new method to measure viscosity for a small amount of sample volume using a pair of surface acoustic wave devices. This method gives a real-time and noninvasive measurement and generates rotational motion of the liquid sample. To verify the proposed method, we conducted an experiment with aqueous sucrose solutions. The surface acoustic wave devices were designed to operate with small sample volumes and offer precise control over liquid manipulation by generating acoustic waves through interdigitated transducers. In the experiment, sucrose solutions ranging from 0% to 30% w/v were tested to investigate the influence of concentration on liquid viscosity and dynamic behavior. Rotational motion was induced in the liquid samples by applying alternating voltages, and the resulting movements were analyzed using image analysis software to calculate angular velocity. The experimental system also recorded resonance frequency shifts corresponding to different concentrations. Results showed a clear correlation between increased sucrose concentration and higher viscosity. The higher the concentration, the greater the voltage required to initiate rotation, and it resulted in reduced rotational velocity. A strong linear relationship (R2 = 0.9618) was observed between the inverse of angular velocity and solution viscosity, confirming the feasibility of using a pair of surface acoustic wave devices for indirect viscosity measurement. The proposed surface acoustic wave device-based system offers a compact, efficient, and sensitive method for liquid characterization, with potential applications in biomedical diagnostics, chemical sensing, and lab-on-chip platforms.
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来源期刊
IEEE Sensors Letters
IEEE Sensors Letters Engineering-Electrical and Electronic Engineering
CiteScore
3.50
自引率
7.10%
发文量
194
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