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用于柔性pH传感器的激光诱导石墨烯电极

Laser-Induced Graphene Electrodes for Flexible pH Sensors.

作者信息

Massaglia Giulia, Spisni Giacomo, Serra Tommaso, Quaglio Marzia

机构信息

Department of Applied Science and Technology, Politecnico di Torino, Corso Duca Degli Abruzzi 24, 10129 Turin, Italy.

Center for Sustainable Future Technologies, Istituto Italiano di Tecnologia, CSFT@Polito, Via Livorno 60, 10100 Turin, Italy.

出版信息

Nanomaterials (Basel). 2024 Dec 14;14(24):2008. doi: 10.3390/nano14242008.

Abstract

In the growing field of personalized medicine, non-invasive wearable devices and sensors are valuable diagnostic tools for the real-time monitoring of physiological and biokinetic signals. Among all the possible multiple (bio)-entities, pH is important in defining health-related biological information, since its variations or alterations can be considered the cause or the effect of disease and disfunction within a biological system. In this work, an innovative (bio)-electrochemical flexible pH sensor was proposed by realizing three electrodes (working, reference, and counter) directly on a polyimide (Kapton) sheet through the implementation of CO laser writing, which locally converts the polymeric sheet into a laser-induced graphene material (LIG electrodes), preserving inherent mechanical flexibility of Kapton. A uniform distribution of nanostructured PEDOT:PSS was deposited via ultrasonic spray coating onto an LIG working electrode as the active material for pH sensing. With a pH-sensitive PEDOT coating, this flexible sensor showed good sensitivity defined through a linear Nernstian slope of (75.6 ± 9.1) mV/pH, across a pH range from 1 to 7. We demonstrated the capability to use this flexible pH sensor during dynamic experiments, and thus concluded that this device was suitable to guarantee an immediate response and good repeatability by measuring the same OCP values in correspondence with the same pH applied.

摘要

在个性化医疗这一不断发展的领域中,非侵入式可穿戴设备和传感器是用于实时监测生理和生物动力学信号的重要诊断工具。在所有可能的多种(生物)实体中,pH值对于定义与健康相关的生物信息非常重要,因为其变化或改变可被视为生物系统内疾病和功能障碍的原因或结果。在这项工作中,通过实施CO激光写入,在聚酰亚胺(Kapton)片材上直接实现三个电极(工作电极、参比电极和对电极),提出了一种创新的(生物)电化学柔性pH传感器,该方法将聚合物片材局部转化为激光诱导石墨烯材料(LIG电极),同时保留了Kapton固有的机械柔韧性。通过超声喷雾涂层将纳米结构的PEDOT:PSS均匀沉积在LIG工作电极上,作为pH传感的活性材料。具有pH敏感的PEDOT涂层,这种柔性传感器在pH值从1到7的范围内,通过线性能斯特斜率(75.6±9.1)mV/pH表现出良好的灵敏度。我们展示了在动态实验中使用这种柔性pH传感器的能力,因此得出结论,该设备通过测量与施加的相同pH值对应的相同开路电位(OCP)值,适合保证即时响应和良好的重复性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7871/11728752/4889b395ccf7/nanomaterials-14-02008-g001.jpg

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