Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis #08-03, Singapore, 138634, Republic of Singapore.
Department of Materials Science and Engineering, National University of Singapore, 9 Engineering Drive 1, Singapore, 117575, Republic of Singapore.
Chem Asian J. 2024 Oct 16;19(20):e202400496. doi: 10.1002/asia.202400496. Epub 2024 Sep 24.
Innovations in wearable sweat sensors hold great promise to provide deeper insights into molecular level health information non-invasively. Lactate, a key metabolite present in sweat, holds immense significance in assessing physiological conditions and performance in sports physiology and health sensing. This paper presents the development and characterization of stretchable electrodes with ultrahigh active surface area of 648 % for lactate sensing. The as-printed stretchable electrodes were functionalized with an electron transfer layer comprising Toluidine Blue O and multi-walled carbon nanotubes (MWCNTs), and an enzymatic layer consisting of lactate dehydrogenase with β-Nicotinamide adenine dinucleotide as the cofactor for lactate selectivity. This sensor achieves a dual-signal read-out in which both electrochemical and fluorescence signals were obtained during lactate detection, demonstrating promising sensor performance in terms of sensitivity and reliability. We demonstrate the robustness of the dual-signal sensor under simulated conditions of physical deformation and shifted excitation. Under these compromised conditions, the performance of the stretchable electrodes remained largely unaffected, showcasing their potential for robust and adaptable sensing platforms in wearable health monitoring applications.
可穿戴汗液传感器的创新具有提供非侵入式分子水平健康信息的巨大潜力。乳酸是汗液中存在的一种关键代谢物,在评估运动生理学和健康传感中的生理状况和表现方面具有重要意义。本文介绍了一种具有超高活性表面积 648%的可拉伸电极的开发和特性,用于乳酸感测。所打印的可拉伸电极用包含 Toluidine Blue O 和多壁碳纳米管 (MWCNTs) 的电子转移层以及包含乳酸脱氢酶和β-烟酰胺腺嘌呤二核苷酸作为乳酸选择性共因子的酶层进行功能化。该传感器实现了双信号读出,在检测乳酸过程中同时获得电化学和荧光信号,展示了在灵敏度和可靠性方面有前景的传感器性能。我们在物理变形和激发偏移的模拟条件下证明了双信号传感器的稳健性。在这些妥协的条件下,可拉伸电极的性能基本不受影响,展示了它们在可穿戴健康监测应用中作为稳健和适应性强的传感平台的潜力。