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Article

Batch-to-Batch Variation in Laser-Inscribed Graphene (LIG) Electrodes for Electrochemical Sensing

1
Department of Plant and Environmental Sciences, Clemson University, Clemson, SC 29634, USA
2
Department of Agricultural Sciences, Clemson University, Clemson, SC 29634, USA
3
Department of Environmental Engineering and Earth Sciences, Clemson University, Clemson, SC 29634, USA
4
Department of Mechanical Engineering, MIT Auto-ID Labs, Massachusetts Institute of Technology, Cambridge, MA 02139, USA
5
Biomedical Engineering Program, Medical Device (MDPnP) Interoperability and Cybersecurity Labs, Department of Anesthesiology, Massachusetts General Hospital, Harvard Medical School, Cambridge, MA 02139, USA
*
Author to whom correspondence should be addressed.
Micromachines 2024, 15(7), 874; https://doi.org/10.3390/mi15070874 (registering DOI)
Submission received: 6 May 2024 / Revised: 25 June 2024 / Accepted: 28 June 2024 / Published: 30 June 2024

Abstract

Laser-inscribed graphene (LIG) is an emerging material for micro-electronic applications and is being used to develop supercapacitors, soft actuators, triboelectric generators, and sensors. The fabrication technique is simple, yet the batch-to-batch variation of LIG quality is not well documented in the literature. In this study, we conduct experiments to characterize batch-to-batch variation in the manufacturing of LIG electrodes for applications in electrochemical sensing. Numerous batches of 36 LIG electrodes were synthesized using a CO2 laser system on polyimide film. The LIG material was characterized using goniometry, stereomicroscopy, open circuit potentiometry, and cyclic voltammetry. Hydrophobicity and electrochemical screening (cyclic voltammetry) indicate that LIG electrode batch-to-batch variation is less than 5% when using a commercial reference and counter electrode. Metallization of LIG led to a significant increase in peak current and specific capacitance (area between anodic/cathodic curve). However, batch-to-batch variation increased to approximately 30%. Two different platinum electrodeposition techniques were studied, including galvanostatic and frequency-modulated electrodeposition. The study shows that formation of metallized LIG electrodes with high specific capacitance and peak current may come at the expense of high batch variability. This design tradeoff has not been discussed in the literature and is an important consideration if scaling sensor designs for mass use is desired. This study provides important insight into the variation of LIG material properties for scalable development of LIG sensors. Additional studies are needed to understand the underlying mechanism(s) of this variability so that strategies to improve the repeatability may be developed for improving quality control. The dataset from this study is available via an open access repository.
Keywords: laser-inscribed graphene; LIG; sensor; batch; variation; scalability; manufacturing laser-inscribed graphene; LIG; sensor; batch; variation; scalability; manufacturing

Share and Cite

MDPI and ACS Style

Tang, Y.; Moreira, G.A.; Vanegas, D.; Datta, S.P.A.; McLamore, E.S. Batch-to-Batch Variation in Laser-Inscribed Graphene (LIG) Electrodes for Electrochemical Sensing. Micromachines 2024, 15, 874. https://doi.org/10.3390/mi15070874

AMA Style

Tang Y, Moreira GA, Vanegas D, Datta SPA, McLamore ES. Batch-to-Batch Variation in Laser-Inscribed Graphene (LIG) Electrodes for Electrochemical Sensing. Micromachines. 2024; 15(7):874. https://doi.org/10.3390/mi15070874

Chicago/Turabian Style

Tang, Yifan, Geisianny A. Moreira, Diana Vanegas, Shoumen P. A. Datta, and Eric S. McLamore. 2024. "Batch-to-Batch Variation in Laser-Inscribed Graphene (LIG) Electrodes for Electrochemical Sensing" Micromachines 15, no. 7: 874. https://doi.org/10.3390/mi15070874

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