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Updated: Aug 24, 2026

Development and Functionalization of Electrolyte-Gated Graphene Field-Effect Transistor for Biomarker Detection
Published on: February 1, 2022
In-Series Production of Integrated Bi-Doped Laser-Induced Graphene Sensors for Simultaneous Detection of Zn(II),
Pamela Rivera Rivera1,2, Ida Valeria Di Cristoforo1,3, Annalisa Scroccarello1
1Department of Bioscience and Technologies for Food, Agriculture and Environment, University of Teramo, Via R. Balzarini, 1, Teramo TE 64100, Italy.
Abstract:
Laser-induced graphene (LIG) is a breakthrough material for electrochemical sensing, and its sensing ability can be tuned through targeted modifications. Herein, a xurography/laser approach is proposed to fabricate in-series, self-contained LIG sensors incorporating bismuth (Bi-LIG), conceived for the simultaneous detection of Zn-(II), Cd-(II), and Pb-(II). The Bi-LIG sensors were assembled using poly-(vinyl alcohol)-assisted Bi doping and xurography, without the need for polyimide chemical pretreatment. The manufacturing process relies on forming a PVA layer incorporating Bi3+ on a polyimide foil via stencil printing, followed by laser-induced formation of the Bi-doped LIG sensing layer, the counter electrode, and contact tracks; the sensors were completed by stencil printing to form reference electrodes and by thermal lamination to insulate. The formation of the Bi-LIG sensing layer was carefully studied, examining the effects of laser power and Bi content. After determining the optimal laser power to form Bi-LIG, Bi precursor concentration revealed a nonmonotonic effect on electrochemical performance, with electrochemical impedance spectroscopy and Raman analysis showing an optimal concentration of 20 mM, characterized by lower charge-transfer resistance and reduced Raman-active disorder. Morphochemical analyses (SEM, EDX, XPS) confirmed the presence of highly dispersed, predominantly oxidized Bi species, with no visible nanoparticle formation. Bi-LIG sensors enabled simultaneous, reproducible detection of Zn-(II), Cd-(II), and Pb-(II) via square-wave anodic stripping voltammetry (RSD ≤ 10%; n = 3), yielding submicromolar LODs (≤0.1 μM) and well-resolved peaks. These sensors achieved quantitative recoveries of the three metals in artificial sweat (Rec 95-112%; RSD ≤ 12%; n = 3).
