Simple graphite/PVC ink-designed paper-based electrodes integrated with a 3D-printed electrochemical device for affordable analyses

IF 5.3 2区 化学 Q1 CHEMISTRY, ANALYTICAL Microchimica Acta Pub Date : 2025-02-26 DOI:10.1007/s00604-025-07041-z
Gleidson Thiago Sá Araújo, Lucas Costa Faustino, Rejane Maria Pereira Silva, Welter Cantanhêde, Everson Thiago Santos Gerôncio
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Abstract

A simple and cost-effective methodology for manufacturing a portable electroanalytical device is reported. The device is based on a graphite/polyvinyl chloride (PVC) paper-based electrode coupled to a miniaturized 3D-printed electrochemical cell (3DEC). The 3DEC was designed to ensure the reproducibility of the system by delimitating the paper-based graphite electrode (PGE) area. The disposable PGE was fabricated by paint-brushing a conductive ink based on graphite powder and toluene-free PVC glue, onto a kraft paper. Different weight proportions (wt%) of graphite/PVC were evaluated regarding mechanical stability and electrochemical behavior. Cyclic voltammetric (CV) analysis in the presence of the [Fe(CN)6]3−/4− redox probe has shown that as the wt% of graphite in the ink increased from 50 to 90%, a clear decrease in peak potential separation (ΔEp) and increase in current are observed, indicating an improvement in charge transfer kinetics. However, 90 wt% graphite electrodes have shown poor adhesion to the substrate and easy leaching due to the small amount of PVC (binder). Therefore, the best PGE was achieved using 80:20 wt% graphite/PVC ink (PGE8020). Moreover, scanning electron microscopy (SEM) images and energy dispersive spectroscopy (EDS) mapping revealed a rugous and more uniform deposition of the conductive ink containing 80 wt% graphite. As a proof of concept, the graphite/PVC ink-based disposable electrodes were employed for the detection of 3-nitro-L-tyrosine (3-NLT) in synthetic urine samples, showing a detection limit of 2.85 μmol L−1, and %recovery in synthetic urine between 97 and 109%, highlighting the reliability and applicability of the proposed approach.

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简单的石墨/PVC油墨设计的纸质电极与3d打印电化学装置集成,可进行经济实惠的分析
本文报道了一种制造便携式电分析装置的简单而经济的方法。该装置基于石墨/聚氯乙烯(PVC)纸基电极耦合到小型化3d打印电化学电池(3DEC)。设计3DEC是为了通过划定纸基石墨电极(PGE)区域来确保系统的再现性。一次性PGE是通过在牛皮纸上涂刷一种基于石墨粉和无三苯PVC胶的导电油墨制成的。对不同重量比例(wt%)的石墨/聚氯乙烯的机械稳定性和电化学行为进行了评价。在[Fe(CN)6]3−/4−氧化还原探针存在下的循环伏安(CV)分析表明,当油墨中石墨的wt%从50%增加到90%时,观察到峰电位分离明显减少(ΔEp)和电流增加,表明电荷转移动力学得到改善。然而,90%的石墨电极显示出与衬底的附着力差,并且由于PVC(粘合剂)的量少而容易浸出。因此,使用80:20 wt%的石墨/PVC油墨(PGE8020)可以获得最佳的PGE。此外,扫描电子显微镜(SEM)图像和能量色散光谱(EDS)图显示,导电油墨的沉积粗糙且更均匀,石墨含量为80%。作为概念验证,将石墨/PVC油墨基一次性电极用于合成尿液样品中3-硝基-L-酪氨酸(3-NLT)的检测,检测限为2.85 μmol L−1,在合成尿液中的回收率为97% ~ 109%,突出了该方法的可靠性和适用性。图形抽象
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来源期刊
Microchimica Acta
Microchimica Acta 化学-分析化学
CiteScore
9.80
自引率
5.30%
发文量
410
审稿时长
2.7 months
期刊介绍: As a peer-reviewed journal for analytical sciences and technologies on the micro- and nanoscale, Microchimica Acta has established itself as a premier forum for truly novel approaches in chemical and biochemical analysis. Coverage includes methods and devices that provide expedient solutions to the most contemporary demands in this area. Examples are point-of-care technologies, wearable (bio)sensors, in-vivo-monitoring, micro/nanomotors and materials based on synthetic biology as well as biomedical imaging and targeting.
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