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基于液态金属的高稳定性压力传感器与微流道集成。

Highly stable liquid metal-based pressure sensor integrated with a microfluidic channel.

机构信息

Department of Medical System Engineering, GIST, Gwangju 500-712, Korea.

School of Mechatronics, GIST, Gwangju 500-712, Korea.

出版信息

Sensors (Basel). 2015 May 21;15(5):11823-35. doi: 10.3390/s150511823.

Abstract

Pressure measurement is considered one of the key parameters in microfluidic systems. It has been widely used in various fields, such as in biology and biomedical fields. The electrical measurement method is the most widely investigated; however, it is unsuitable for microfluidic systems because of a complicated fabrication process and difficult integration. Moreover, it is generally damaged by large deflection. This paper proposes a thin-film-based pressure sensor that is free from these limitations, using a liquid metal called galinstan. The proposed pressure sensor is easily integrated into a microfluidic system using soft lithography because galinstan exists in a liquid phase at room temperature. We investigated the characteristics of the proposed pressure sensor by calibrating for a pressure range from 0 to 230 kPa (R2 > 0.98) using deionized water. Furthermore, the viscosity of various fluid samples was measured for a shear-rate range of 30-1000 s(-1). The results of Newtonian and non-Newtonian fluids were evaluated using a commercial viscometer and normalized difference was found to be less than 5.1% and 7.0%, respectively. The galinstan-based pressure sensor can be used in various microfluidic systems for long-term monitoring with high linearity, repeatability, and long-term stability.

摘要

压力测量被认为是微流控系统中的关键参数之一。它已广泛应用于生物学和生物医学等各个领域。电测法是研究最多的方法,但由于制造工艺复杂且难以集成,因此不适合微流控系统。此外,它通常会因大挠度而损坏。本文提出了一种基于薄膜的压力传感器,该传感器使用镓铟锡(galinstan)这种液态金属,可避免这些限制。由于室温下镓铟锡呈液态,因此该压力传感器可使用软光刻技术轻松集成到微流控系统中。我们使用去离子水对压力传感器进行了校准,测量范围为 0 至 230kPa(R2>0.98),从而研究了所提出的压力传感器的特性。此外,还测量了各种流体样本在 30-1000s(-1)剪切速率范围内的粘度。使用商业粘度计评估了牛顿和非牛顿流体的结果,归一化差异分别小于 5.1%和 7.0%。基于镓铟锡的压力传感器可以用于各种微流控系统进行长期监测,具有高线性度、可重复性和长期稳定性。

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