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Sustainable electrochemical sensors from cork-derived laser induced graphene: Non-enzymatic glucose detection in urine

软木 石墨烯 电化学 尿 激光器 葡萄糖氧化酶 纳米技术 材料科学 化学 生物传感器 色谱法 电极 光学 生物化学 复合材料 物理 物理化学
作者
Michele Setti,Eoghan Vaughan,Richard Murray,Labrini Sygellou,Aidan J. Quinn,Mauro Riccò,Daniele Pontiroli,Daniela Iacopino
出处
期刊:Sensors and Actuators B-chemical [Elsevier BV]
卷期号:430: 137352-137352 被引量:48
标识
DOI:10.1016/j.snb.2025.137352
摘要

Laser Induced Graphene (LIG) is a highly versatile material with exceptional electrical conductivity and large surface area obtained through the laser pyrolysis of aromatic plastics like polyimides. The recent remarkable discovery that LIG can also be synthesized from environmentally friendly materials like cork, extends application to the manufacture of sustainable, biocompatible, and eco-friendly devices such as biosensors. Here we present the fabrication of a novel “green” non-enzymatic glucose sensor obtained by direct laser writing of flexible cork sheets. To enable glucose detection, the cork sheets were wetted with an aqueous CuSO 4 solution. Laser graphitization promoted the conversion of CuSO 4 into CuO nanoparticles and resulted in formation of copper-cork Laser Induced Graphene (Cu-cLIG) materials displaying high surface area and high density of CuO NPs embedded in the cLIG matrix. The sensor showed excellent glucose sensing performance in buffer and good selectivity over interfering molecules. A fully laser written sensor was also fabricated and tested for detection of glucose in artificial urine. The sensor exhibited high stability and reproducibility, allowing glucose detection in artificial urine with a high sensitivity of 223 μ A / mM ⋅ c m 2 and a LOD of 9.7 μ M . This easy and eco-friendly fabrication method, combined with the use of renewable and abundant precursor materials, paves the way for the development of truly sustainable sensing platforms for future green electronics. • Cu-decorated Laser Induced Graphene from natural cork was successfully obtained. • Non-enzymatic glucose sustainable sensors were manufactured in one-step laser process. • “Green” Cu-cork graphene sensors exhibited high selectivity and sensitivity in artificial urine.
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