Department of Biomedical Engineering and Centre for Innovation in Medical Engineering (CIME), Universiti Malaya, Kuala Lumpur, Malaysia.
Faculty of Technical Sciences, University of Novi Sad, Novi Sad, Serbia.
Med Sci Monit. 2024 Jun 12;30:e943321. doi: 10.12659/MSM.943321.
BACKGROUND This study explored the integration of conductive threads into a microfluidic compact disc (CD), developed using the xurographic method, for a potential sweat biosensing platform. MATERIAL AND METHODS The microfluidic CD platform, fabricated using the xurographic method with PVC films, included venting channels and conductive threads linked to copper electrodes. With distinct microfluidic sets for load and metering, flow control, and measurement, the CD's operation involved spinning for sequential liquid movement. Impedance analysis using HIOKI IM3590 was conducted for saline and artificial sweat solutions on 4 identical CDs, ensuring reliable conductivity and measurements over a 1 kHz to 200 kHz frequency range. RESULTS Significant differences in |Z| values were observed between saline and artificial sweat treatments. 27.5 μL of saline differed significantly from 27.5 μL of artificial sweat, 72.5 μL of saline from 72.5 μL of artificial sweat, and 192.5 μL of saline from 192.5 μL of sweat. Significant disparities in |Z| values were observed between dry fibers and Groups 2, 3, and 4 (varying saline amounts). No significant differences emerged between dry fibers and Groups 6, 7, and 8 (distinct artificial sweat amounts). These findings underscore variations in fiber characteristics between equivalent exposures, emphasizing the nuanced response of the microfluidic CD platform to different liquid compositions. CONCLUSIONS This study shows the potential of integrating conductive threads in a microfluidic CD platform for sweat sensing. Challenges in volume control and thread coating degradation must be addressed for transformative biosensing devices in personalized healthcare.
本研究探索了将导电线集成到使用拓印法制作的微流控光盘(CD)中,以开发一种潜在的汗液生物传感平台。
使用拓印法和 PVC 薄膜制作的微流控 CD 平台,包括通气通道和与铜电极相连的导电线。CD 的操作包括旋转以实现顺序液体运动,使用 HIOKI IM3590 进行盐水和人工汗液溶液的阻抗分析,确保在 1 kHz 至 200 kHz 频率范围内具有可靠的导电性和测量结果。
在盐水和人工汗液处理之间观察到 |Z| 值的显著差异。27.5 μL 的盐水与 27.5 μL 的人工汗液显著不同,72.5 μL 的盐水与 72.5 μL 的人工汗液显著不同,192.5 μL 的盐水与 192.5 μL 的汗液也显著不同。在干纤维和第 2、3、4 组(不同的盐水量)之间观察到 |Z| 值的显著差异。在干纤维和第 6、7、8 组(不同的人工汗液量)之间没有观察到显著差异。这些发现突出了在等效暴露下纤维特性的变化,强调了微流控 CD 平台对不同液体成分的细微反应。
本研究展示了将导电线集成到微流控 CD 平台中用于汗液感测的潜力。在个性化医疗中,为实现变革性的生物传感设备,必须解决体积控制和线涂层降解的挑战。