Institute of Life Science, and Laboratory of Tissue and Cell Biology, Laboratory Teaching & Management Center, Chongqing Medical University, Chongqing, 400016, China.
Chongqing Engineering Research Center of Pharmaceutical Sciences, Chongqing Medical and Pharmaceutical College, Chongqing, 401331, China.
Talanta. 2024 Oct 1;278:126499. doi: 10.1016/j.talanta.2024.126499. Epub 2024 Jul 1.
To enhance personalized diabetes management, there is a critical need for non-invasive wearable electrochemical sensors made from flexible materials to enable continuous monitoring of sweat glucose levels. The main challenge lies in developing glucose sensors with superior electrochemical characteristics and high adaptability. Herein, we present a wearable sensor for non-enzymatic electrochemical glucose analysis. The sensor was synthesized using hydrothermal and one-pot preparation methods, incorporating gold nanoparticles (AuNPs) functionalized onto aminated multi-walled carbon nanotubes (AMWCNTs) as an efficient catalyst, and crosslinked with carboxylated styrene butadiene rubber (XSBR) and PEDOT:PSS. The sensors were then integrated onto screen-printed electrodes (SPEs) to create flexible glucose sensors (XSBR-PEDOT:PSS-AMWCNTs/AuNPs/SPE). Operating under neutral conditions, the sensor exhibits a linear range of 50 μmol/L to 600 μmol/L, with a limit of detection limit of 3.2 μmol/L (S/N = 3), enabling the detection of minute glucose concentrations. The flexible glucose sensor maintains functionality after 500 repetitions of bending at a 180° angle, without significant degradation in performance. Furthermore, the sensor exhibits exceptional stability, repeatability, and resistance to interference. Importantly, we successfully monitored changes in sweat glucose levels by applying screen-printed electrodes to human skin, with results consistent with normal physiological blood glucose fluctuations. This study details the fabrication of a wearable sensor characterized by ease of manufacture, remarkable flexibility, high sensitivity, and adaptability for non-invasive blood glucose monitoring through non-enzymatic electrochemical analysis. Thus, this streamlined fabrication process presents a novel approach for non-invasive, real-time blood glucose level monitoring.
为了增强个性化糖尿病管理,我们急需开发由柔性材料制成的非侵入式可穿戴电化学传感器,以实现对汗液葡萄糖水平的连续监测。主要挑战在于开发具有卓越电化学特性和高适应性的葡萄糖传感器。在此,我们提出了一种用于非酶电化学葡萄糖分析的可穿戴传感器。该传感器采用水热和一锅法合成,将功能化的金纳米颗粒(AuNPs)负载在氨化多壁碳纳米管(AMWCNTs)上作为高效催化剂,并与羧基化苯乙烯丁二烯橡胶(XSBR)和 PEDOT:PSS 交联。然后将传感器集成到丝网印刷电极(SPE)上,以创建柔性葡萄糖传感器(XSBR-PEDOT:PSS-AMWCNTs/AuNPs/SPE)。在中性条件下,传感器的线性范围为 50 μmol/L 至 600 μmol/L,检测限为 3.2 μmol/L(S/N = 3),能够检测到微小的葡萄糖浓度。柔性葡萄糖传感器在 180°角度弯曲 500 次后仍保持功能,性能没有明显下降。此外,传感器表现出出色的稳定性、重复性和抗干扰能力。重要的是,我们成功地通过将丝网印刷电极应用于人体皮肤来监测汗液葡萄糖水平的变化,结果与正常生理血糖波动一致。本研究详细介绍了一种可穿戴传感器的制造,该传感器具有制造简单、柔韧性好、灵敏度高、适应非侵入式电化学分析的特点,可用于无创血糖监测。因此,这种简化的制造工艺为非侵入式、实时血糖水平监测提供了一种新方法。