Department of Chemistry and Chemical Biology, McMaster University , Hamilton, Ontario L8S 4M1, Canada.
Biomicrofluidics. 2015 Apr 13;9(2):026501. doi: 10.1063/1.4918596. eCollection 2015 Mar.
The development of widely applicable point-of-care sensing and diagnostic devices can benefit from simple and inexpensive fabrication techniques that expedite the design, testing, and implementation of lab-on-a-chip devices. In particular, electrodes integrated within microfluidic devices enable the use of electrochemical techniques for the label-free detection of relevant analytes. This work presents a novel, simple, and cost-effective bench-top approach for the integration of high surface area three-dimensional structured electrodes fabricated on polystyrene (PS) within poly(dimethylsiloxane) (PDMS)-based microfluidics. Optimization of PS-PDMS bonding results in integrated devices that perform well under pressure and fluidic flow stress. Furthermore, the fabrication and bonding processes are shown to have no effect on sensing electrode performance. Finally, the on-chip sensing capabilities of a three-electrode electrochemical cell are demonstrated with a model redox compound, where the high surface area structured electrodes exhibit ultra-high sensitivity. We propose that the developed approach can significantly expedite and reduce the cost of fabrication of sensing devices where arrays of functionalized electrodes can be used for point-of-care analysis and diagnostics.
广泛适用的即时传感和诊断设备的发展可以受益于简单且廉价的制造技术,这些技术可以加速芯片实验室设备的设计、测试和实施。特别是,集成在微流控设备内的电极能够利用电化学技术对相关分析物进行无标记检测。这项工作提出了一种新颖、简单且具有成本效益的台式方法,用于将在聚苯乙烯 (PS) 上制造的高表面积三维结构化电极集成到基于聚二甲基硅氧烷 (PDMS) 的微流控中。PS-PDMS 键合的优化导致在压力和流体流动应力下表现良好的集成设备。此外,制造和键合工艺对传感电极性能没有影响。最后,使用模型氧化还原化合物演示了三电极电化学池的片上传感能力,其中高表面积结构化电极表现出超高灵敏度。我们提出,所开发的方法可以显著加快和降低具有功能化电极阵列的传感设备的制造成本,这些阵列可用于即时分析和诊断。