4.6 Article

Electromicrofluidic Device on Multilayered Laser-Induced Polyamide Substrate for Diverse Electrochemical Applications

Journal

IEEE TRANSACTIONS ON ELECTRON DEVICES
Volume 67, Issue 11, Pages 5097-5103

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TED.2020.3022346

Keywords

CO2 laser; electrochemical sensing; interdigitated microelectrodes (IDEs); laser-induced graphene (LIG); microfluidic channel; uric acid (UA)

Funding

  1. RESPOND Program of the Indian Space Research Organization [ISRO/RES/3/774/18-19]
  2. Science and Engineering Research Board (SERB) National Postdoctoral Fellowship (NPDF) [PDF/2018/003658]

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Microfluidic devices with integrated electrodes, called electromicrofluidic (EMF) device, have been reported for multiple applications. In this work, a unique approach to realizing a multilayered EMF device, with microchannel and integrated electrodes on the same polyamide (PI) substrate, has been presented. A computercontrolled CO2 laser ablation method, with varying speeds and power values, was employed to form laser-induced graphene (LIG) on a PI substrate as per the desired design. Initially, to create a microchannel layer, the formed LIG was peeled off which left behind an etched pattern. Subsequently, to realize an electrode layer, the PI substratewith microchannel was further ablated to create patterned LIG. An optimal flow rate of 100 mu L/min via a controlled syringe pump was established in EMF device. As a prototype, the developed platform, with microchannel and electrodes, was explored for variable electrochemical applications. First, the electrochemical sensing of uric acid displayed a limit of detection (LOD) as 0.61 mu M in a linear range from10 mu M to 3 mMwith significant recoveryvalues. Furthermore, the polarization performance for fuel cell application was evaluated on the developed EMF platform using the chronoamperometry (CA) method with a stable open-circuit potential (OCP), harnessing the maximum power density obtained was 3.027 nW/cm2. Finally, an array of interdigitated microelectrodes(IDEs) was realized to examine impedance-based nitrite detection. Overall, the presented multilayered EMF devices with microchannel and electrodes on the single sheet authenticate the applicabilityof the designed platform for a variety of sensing and energy harvesting applications.

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