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Bench-Top Fabrication of an All-PDMS Microfluidic Electrochemical Cell Sensor Integrating Micro/Nanostructured Electrodes

机译:集成微/纳米结构电极的All-PDMS微流电化学电池传感器的台式制造

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In recent years, efforts in the development of lab-on-a-chip (LoC) devices for point-of-care (PoC) applications have increased to bring affordable, portable, and sensitive diagnostics to the patients’ bedside. To reach this goal, research has shifted from using traditional microfabrication methods to more versatile, rapid, and low-cost options. This work focuses on the benchtop fabrication of a highly sensitive, fully transparent, and flexible poly (dimethylsiloxane) (PDMS) microfluidic (μF) electrochemical cell sensor. The μF device encapsulates 3D structured gold and platinum electrodes, fabricated using a shape-memory polymer shrinking method, which are used to set up an on-chip electrochemical cell. The PDMS to PDMS-structured electrode bonding protocol to fabricate the μF chip was optimized and found to have sufficient bond strength to withstand up to 100 mL/min flow rates. The sensing capabilities of the on-chip electrochemical cell were demonstrated by using cyclic voltammetry to monitor the adhesion of murine 3T3 fibroblasts in the presence of a redox reporter. The charge transfer across the working electrode was reduced upon cell adhesion, which was used as the detection mechanism, and allowed the detection of as few as 24 cells. The effective utilization of simple and low cost bench-top fabrication methods could accelerate the prototyping and development of LoC technologies and bring PoC diagnostics and personalized medicine to the patients’ bedside.
机译:近年来,在开发用于即时医疗(PoC)应用的芯片实验室(LoC)设备方面的努力已不断增加,以便为患者的床边带来负担得起的,便携式且灵敏的诊断程序。为了实现这一目标,研究已从使用传统的微细加工方法转变为功能更广泛,更快速且成本更低的选择。这项工作的重点是在台式制造高度灵敏,完全透明和柔性的聚二甲基硅氧烷(PDMS)微流体(μF)电化学电池传感器。 μF器件封装了使用形状记忆聚合物收缩法制造的3D结构金和铂电极,这些电极用于建立片上电化学电池。优化了用于制造μF芯片的PDMS与PDMS结构的电极键合协议,发现其具有足够的键合强度,可承受高达100 mL / min的流速。通过使用循环伏安法在氧化还原报告基因存在下监测鼠类3T3成纤维细胞的粘附力,证明了片上电化学电池的传感能力。通过细胞粘附,减少了跨工作电极的电荷转移,这被用作检测机制,并允许检测多达24个细胞。有效利用简单和低成本的台式制造方法可以加快LoC技术的原型开发和发展,并将PoC诊断和个性化药物带到患者的床边。

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