Instituto de Química de San Luis (INQUISAL), Departamento de Química, Universidad Nacional de San Luis, CONICET, Chacabuco 917, D5700BWS, San Luis, Argentina.
Instituto de Nanosistemas, Escuela de Bio y Nanotecnologías, UNSAM-CONICET, Av. 25 de Mayo 1021, 1650 San Martín, Buenos Aires, Argentina.
Talanta. 2023 May 15;257:124372. doi: 10.1016/j.talanta.2023.124372. Epub 2023 Feb 14.
In this study, we present for the first time a simple and novel method for the fabrication of paper-based electrochemical sensors. The device development was carried out in a single stage with a standard wax printer. Hydrophobic zones were delimited with commercial solid ink, while electrodes were generated using new composite solid inks of graphene oxide/graphite/beeswax (GO/GRA/beeswax) and graphite/beeswax (GRA/beeswax). Subsequently, the electrodes were electrochemically activated by applying an overpotential. Various experimental variables for the GO/GRA/beeswax composite synthesis and electrochemical system obtention were evaluated. The activation process was examined by SEM, FTIR, cyclic voltammetry, electrochemical impedance spectroscopy and contact angle measurement. These studies showed morphological and chemical changes in the electrode active surface. As a result, the activation stage considerably improved the electron transfer on the electrode. The manufactured device was successfully applied for galactose (Gal) determination. This method presented a linear relation in the Gal concentration range from 84 to 1736 μmol L, with a LOD of 0.1 μmol L. The variation within and between-assay coefficients were 5.3% and 6.8%, respectively. The strategy here exposed for paper-based electrochemical sensors design is an unprecedented alternative system and represents a promising tool for mass production of economic analytical devices.
在这项研究中,我们首次提出了一种简单新颖的方法来制造基于纸张的电化学传感器。该设备的开发是在一个阶段内用标准的蜡质打印机进行的。使用商业固体油墨来限定疏水区,而使用氧化石墨烯/石墨/蜂蜡 (GO/GRA/蜂蜡) 和石墨/蜂蜡 (GRA/蜂蜡) 的新型复合固体油墨生成电极。随后,通过施加过电势对电极进行电化学激活。对 GO/GRA/蜂蜡复合合成和电化学系统获得的各种实验变量进行了评估。通过 SEM、FTIR、循环伏安法、电化学阻抗谱和接触角测量来检查激活过程。这些研究表明电极活性表面的形态和化学变化。结果,激活阶段极大地改善了电极上的电子转移。所制造的器件成功地用于检测半乳糖 (Gal)。该方法在 Gal 浓度范围为 84 至 1736 μmol L 时呈现线性关系,LOD 为 0.1 μmol L。内部和之间分析的变异系数分别为 5.3%和 6.8%。这里为基于纸张的电化学传感器设计所展示的策略是一个前所未有的替代系统,代表了大规模生产经济分析设备的有前途的工具。