蛇形PDMS微流体直接在丝网印刷电极上的无泄漏键合

S. Nuh, A. Kwanyuang, N. Konthapakdee, Somyot Chirasatitsin, Tonghathai Phairatana
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引用次数: 1

摘要

电化学传感器和生物传感器一直致力于开发集成在丝网印刷电极(SPE)上的微流体用于医学诊断。聚二甲基硅氧烷(PDMS)是一种弹性体材料,已广泛应用于微流控器件的制造。基于pdm的集成了SPE的微流控存在着泄漏问题,特别是对于连续监测系统而言。在这项研究中,我们的目的是研究PDMS比例对基于PDMS的蛇形图案集成商业spe的微流体的影响,以克服在连续流系统中使用时的泄漏问题。采用Instron万能试验机对不同PDMS比例(10:1、10:0.8、10:0.6、10:4、10:0.2)的力学性能进行弹性模量测试。此外,通过不同PDMS比例制备的微流体装置进行连续流动,并直接集成到商用SPE上进行泄漏测试。结果表明,采用标准PDMS混合比为10:1制备的微流控装置容易发生泄漏,而采用更灵活的10:6 0配制的PDMS微流控装置提供了合适的混合比,且无泄漏性能优异。这表明刚性pms微流控装置比柔性pms微流控装置更容易引起泄漏。因此,PDMS比为10:6 .6在制造集成在商业SPE上的微流体、开发用于连续监测系统的基于微流体的电化学传感器和生物传感器方面显示出巨大的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Leakage-Free Bonding of a Serpentine PDMS Microfluidics Directly on a Screen-Printed Electrode
Electrochemical sensors and biosensors have been focused on the development of a microfluidic integrated on a screen-printed electrode (SPE) for use in medical diagnosis. Polydimethylsiloxane (PDMS), an elastomer material, has been widely used for the fabrication of microfluidic devices. Regarding PDMS-based microfluidic integrated on SPE, there is a significant issue of leakage, especially for a continuous monitoring system. In this study, we aim to investigate the effect of PDMS ratio on PDMS-based microfluidic with serpentine pattern integrated commercial SPEs to overcome the leakage problem when using in a continuous flow system. The mechanical properties of different PDMS ratios, including 10:1, 10:0.8, 10:0.6, 10:4, and 10:0.2 were examined in terms of elastic modulus using an Instron universal testing machine. Additionally, leakage test was performed by continuous flow through microfluidic devices prepared in different PDMS ratios and integrated directly onto a commercial SPE. The results revealed that leaks occurred easily when using the microfluidic device fabricated with the standard PDMS mixing ratio at 10:1, whereas the more flexible PDMS microfluidic device at a ratio of 10:0.6 provides a suitable ratio with an excellent performance of leakage-free. This indicates that a stiff PDMS-based microfluidic device can cause leakage more easily than a flexible PDMS-based microfluidic device. Hence, the PDMS ratio of 10:0.6 exhibits a great promise in fabricating a microfluidic integrated on commercial SPE toward the development of microfluidic-based electrochemical sensors and biosensors for use in a continuous monitoring system.
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