251. Laser‐Induced Graphene on Paper toward Efficient Fabrication of Flexible, Planar Electrodes for Electrochemical Sensing
- Author
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Ana C. Marques, M. Goreti F. Sales, Tomás Pinheiro, Rodrigo Martins, Elvira Fortunato, Sara Silvestre, João Coelho, and Universidade do Minho
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Materials science ,Fabrication ,Science & Technology ,Scope (project management) ,Graphene ,Laser-induced graphene ,Mechanical Engineering ,02 engineering and technology ,Paper substrates ,Fire-retardant agents ,010402 general chemistry ,021001 nanoscience & nanotechnology ,Laser ,01 natural sciences ,Engineering physics ,Planar electrode ,0104 chemical sciences ,law.invention ,Glucose ,Mechanics of Materials ,law ,Electrochemical sensors ,0210 nano-technology ,Cellulose - Abstract
Laser irradiation to induce networks of graphene-based structures toward cost-effective, flexible device fabrication is a highly pursued area, with applications in various polymeric substrates. This work reports the application of this approach toward commonly available, eco-friendly, low-cost substrates, namely, chromatographic and office papers. Through an appropriate chemical treatment with sodium tetraborate as a fire-retardant agent, photothermal conversion to porous laser-induced graphene (LIG) on paper is achieved. Raman peaks are identified, with I2D/IG and ID/IG peak ratios of 0.616 ± 0.095 and 1.281 ± 0.173, showing the formation of multilayered graphenic material, exhibiting sheet resistances as low as 56.0 sq1. Coplanar, LIG-based, three-electrode systems (working, counter and reference electrodes) are produced and characterized, showing high current Faradaic oxidation and reduction peaks, translating in high electrochemical active area, doubling the geometric area. Good electron transfer kinetics performed exclusively with on-chip measurements are reached, with k0 values as high as 7.15 × 104 cm s1. Proof-of-concept, amperometric, enzymatic glucose biosensors are developed, exhibiting good analytical performance in physiologically relevant glucose levels, with results pointing to the applicability of paper-based LIG toward efficient, disposable electrochemical sensor development, increasing their sustainability and accessibility, while simplifying their production and reducing their cost., This work was funded by National Funds through FCT I.P. under the scope of the project UIDB/50025/2020-2023. The authors acknowledge the ERC AdG project DIGISMART ref. 787410 and EC project SYNERGY H2020-WIDESPREAF-2020-5, CSA, proposal number 952169. T. Pinheiro acknowledges funding from FCT I.P. through the Ph.D. Grant DFA/ BD/8606/2020. S. Silvestre acknowledges funding from FCT I.P. through the Ph.D. Grant SFRH/BD/149751/2019. A.C. Marques acknowledges funding from FCT I.P. through the Ph.D. Grant SFRH/BD/115173/2016, info:eu-repo/semantics/publishedVersion
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