i-Lab, Suzhou Institute of Nano-Tech and Nano-Bionics , Chinese Academy of Sciences, 398 Ruoshui Road, Suzhou, 215123, People's Republic of China.
Anal Chem. 2017 Oct 3;89(19):10224-10231. doi: 10.1021/acs.analchem.7b01560. Epub 2017 Sep 22.
As chemical sensors are in great demand for portable and wearable analytical applications, it is highly desirable to develop an all-solid-state ion-selective electrode (ISE) and reference electrode (RE) platform with simplicity and stability. Here we propose a wearable sensor platform with a new type of all-solid-state ISE based on a gold nanodendrite (AuND) array electrode as the solid contact and a poly(vinyl acetate)/inorganic salt (PVA/KCl) membrane-coated all-solid-state RE. A simple and controllable method was developed to fabricate the AuNDs on a microwell array patterned chip by one-step electrodeposition without additional processing. For the first time, the AuND electrodes with different real surface area and double layer capacitance were developed as solid contact of the Na-ISE to investigate the relationship between performance of the ISE and surface area. As-prepared AuND-ISE with larger surface area (∼7.23 cm) exhibited enhanced potential stability compared to those with smaller surface area (∼1.85 cm) and to bare Au ISE. Important as the ISE, the PVA/KCl membrane-coated Ag/AgCl RE exhibited highly stable potential even after 3 months' storage. Finally, a wearable sweatband sensor platform was developed for efficient sweat collection and real-time analysis of sweat sodium during indoor exercise. This all-solid-state ISE and RE integrated sensor platform provided a very simple and reliable way to construct diverse portable and wearable devices for healthcare, sports, clinical diagnosis, and environmental analysis applications.
由于对用于便携式和可穿戴分析应用的化学传感器有很大的需求,因此非常希望开发一种具有简单性和稳定性的全固态离子选择性电极 (ISE) 和参比电极 (RE) 平台。在这里,我们提出了一种具有新型全固态 ISE 的可穿戴传感器平台,该平台以金纳米树突 (AuND) 阵列电极作为固体接触,以聚醋酸乙烯酯/无机盐 (PVA/KCl) 膜涂层全固态 RE。开发了一种简单可控的方法,通过一步电沉积在微井阵列图案芯片上制造 AuND,无需额外处理。首次开发了具有不同真实表面积和双层电容的 AuND 电极作为 Na-ISE 的固体接触,以研究 ISE 性能与表面积之间的关系。与表面积较小的 AuND-ISE(1.85 cm)和裸 Au ISE 相比,具有较大表面积(7.23 cm)的 AuND-ISE 表现出增强的电位稳定性。与 ISE 一样重要的是,PVA/KCl 膜涂层 Ag/AgCl RE 即使在储存 3 个月后也表现出非常稳定的电位。最后,开发了一种可穿戴的发带传感器平台,用于有效收集汗液并实时分析室内运动时的汗液钠。这种全固态 ISE 和 RE 集成传感器平台为构建用于医疗保健、运动、临床诊断和环境分析应用的各种便携式和可穿戴设备提供了一种非常简单可靠的方法。