Wang Ying, Guo Haojie, Yuan Min, Yu Jiabing, Wang Zeping, Chen Xianping
Key Laboratory of Optoelectronic Technology & Systems, Education Ministry of China, Chongqing University, Chongqing, 400044, China.
Key Laboratory of Optoelectronic Technology & Systems, Education Ministry of China, Chongqing University, Chongqing, 400044, China.
Talanta. 2023 May 15;257:124362. doi: 10.1016/j.talanta.2023.124362. Epub 2023 Feb 13.
There has been a recent increase in the demand for wearable sensors for sweat glucose monitoring to facilitate diabetes management in a patient-friendly and non-invasive manner. To address this issue, the key challenge lies in the design of flexible sensors with high conductivity, miniaturized patterning, and environmental friendliness. Herein, we introduce a flexible electrochemical sensing system for glucose and pH detection based on one-step laser-scribed PtNPs nanostructured 3D porous laser-scribed graphene (LSG). The as-prepared nanocomposites can synchronously possess hierarchical porous graphene architectures, whereas PtNPs can significantly enhance their sensitivity and electrocatalytic activity. Benefiting from these advantages, the fabricated Pt-HEC/LSG biosensor exhibited a high sensitivity of 69.64 μA mM cm as well as a low limit of detection (LOD) of 0.23 μM at a detection range of 5-3000 μM (covering the glucose range in sweat). Moreover, the pH sensor was functionalized with polyaniline (PANI) on a Pt-HEC/LSG electrode, and it also exhibited high sensitivity (72.4 mV/pH) in the linear range of pH 4-8. The feasibility of the biosensor was confirmed by analyzing human perspiration during physical exercise. This dual-functional electrochemical biosensor displayed excellent performance, including a low detection limit, high selectivity, and great flexibility. These results confirm that the proposed dual-functional flexible electrode and fabrication process are highly promising for application in human sweat-based electrochemical glucose and pH sensors.
最近,用于汗液葡萄糖监测的可穿戴传感器需求有所增加,以便以患者友好且非侵入性的方式促进糖尿病管理。为了解决这个问题,关键挑战在于设计具有高导电性、小型化图案化和环境友好性的柔性传感器。在此,我们介绍一种基于一步激光刻写的PtNPs纳米结构3D多孔激光刻写石墨烯(LSG)的用于葡萄糖和pH检测的柔性电化学传感系统。所制备的纳米复合材料可以同时拥有分级多孔石墨烯结构,而PtNPs可以显著提高其灵敏度和电催化活性。受益于这些优点,所制备的Pt-HEC/LSG生物传感器在5-3000μM(涵盖汗液中的葡萄糖范围)的检测范围内表现出69.64μA mM cm的高灵敏度以及0.23μM的低检测限(LOD)。此外,pH传感器在Pt-HEC/LSG电极上用聚苯胺(PANI)进行了功能化,并且在pH 4-8的线性范围内也表现出高灵敏度(72.4 mV/pH)。通过分析体育锻炼期间的人体汗液证实了该生物传感器的可行性。这种双功能电化学生物传感器表现出优异的性能,包括低检测限、高选择性和良好的柔韧性。这些结果证实,所提出的双功能柔性电极及其制造工艺在基于人体汗液的电化学葡萄糖和pH传感器中的应用具有很大的前景。