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声流动力学界面张力测量法。

Acoustofluidic dynamic interfacial tensiometry.

机构信息

Paul C. Lauterbur Research Center for Biomedical Imaging, Institute of Biomedical and Health Engineering, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, 1068 Xueyuan Avenue, Shenzhen 518055, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

J Acoust Soc Am. 2021 Nov;150(5):3608. doi: 10.1121/10.0007161.

Abstract

The interfacial tension (IFT) of fluids plays an essential role in industrial, biomedical, and synthetic chemistry applications; however, measuring IFT at ultralow volumes is challenging. Here, we report a novel method for sessile drop tensiometry using surface acoustic waves (SAWs). The IFT of the fluids was determined by acquiring the silhouette of an axisymmetric sessile drop and applying iterative fitting using Taylor's deformation equation. Owing to physiochemical differences, upon interacting with acoustic waves, each microfluid has a different streaming velocity. This streaming velocity dictates any subsequent changes in droplet shape (i.e., height and width). We demonstrate the effectiveness of the proposed SAW-based tensiometry technique using blood plasma to screen for high leptin levels. The proposed device can measure the IFT of microscale liquid volumes (up to 1 μL) with an error margin of only ±5% (at 25 °C), which deviates from previous reported results. As such, this method provides pathologists with a solution for the pre-diagnosis of various blood-related diseases.

摘要

流体的界面张力(IFT)在工业、生物医学和合成化学应用中起着至关重要的作用;然而,在超低体积下测量 IFT 具有挑战性。在这里,我们报告了一种使用表面声波(SAW)进行悬滴张力测量的新方法。通过获取轴对称悬滴的轮廓,并使用泰勒变形方程进行迭代拟合,确定了流体的 IFT。由于物理化学差异,每种微流体在与声波相互作用时具有不同的流速。这种流速决定了液滴形状的任何后续变化(即高度和宽度)。我们使用血浆来筛选高瘦素水平,展示了所提出的基于 SAW 的张力测量技术的有效性。该设备可以测量微尺度液体体积(高达 1μL)的 IFT,误差幅度仅为±5%(在 25°C 时),与之前报道的结果有所偏离。因此,这种方法为病理学家提供了一种用于各种与血液相关疾病的预诊断的解决方案。

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