He Jing, Xiao Gang, Chen Xiaodie, Qiao Yan, Xu Dan, Lu Zhisong
Key Laboratory of Luminescent and Real-Time Analytical Chemistry (Southwest University), Ministry of Education, School of Materials & Energy, Southwest University 1 Tiansheng Road Chongqing 400715 P. R. China
Institute for Clean Energy & Advanced Materials, School of Materials & Energy, Southwest University 1 Tiansheng Road Chongqing 400715 P. R. China.
RSC Adv. 2019 Aug 2;9(41):23957-23963. doi: 10.1039/c9ra02831e. eCollection 2019 Jul 29.
Textile-based microfluidic analytical devices have demonstrated significant potentials in biomolecular detection; however, to date, they have not been integrated with a shape memory polymer to prepare a thermoresponsive device for human sweat analysis. Herein, a thermoresponsive textile/paper-based microfluidic analysis system was constructed by combining biocompatible polyurethane (PU), cotton fabric and a paper-based colorimetric sensor. The coating of PU endowed the textile with temperature-dependent shape memory capability and patterned the channels to guide the liquid transport. A paper-based colorimetric sensor was prepared a layer-by-layer deposition method and coupled with a smartphone for the quantitative analysis of glucose concentration. The as-prepared thermoresponsive textile/paper-based microfluidic analysis system had the dynamic range of 50-600 μM and the detection limit of 13.49 μM. After being fixed in the inner collar of a shirt, the system demonstrated great capabilities for the thermal-triggered sweat transport and detection of glucose in human sweat under a high-temperature condition (59 °C). This study not only provides a low-cost and easy-to-wear sweat analysis tool for the health monitoring of people working at high temperatures, but also expands the applications of shape memory polymers and textile-based microfluidic devices in point-of-care testing.
基于纺织品的微流控分析装置在生物分子检测方面已展现出巨大潜力;然而,迄今为止,它们尚未与形状记忆聚合物集成以制备用于人体汗液分析的热响应装置。在此,通过结合生物相容性聚氨酯(PU)、棉织物和基于纸的比色传感器,构建了一种热响应性的纺织品/纸基微流控分析系统。PU涂层赋予纺织品温度依赖性形状记忆能力,并对通道进行图案化以引导液体传输。采用逐层沉积法制备了基于纸的比色传感器,并与智能手机结合用于葡萄糖浓度的定量分析。所制备的热响应性纺织品/纸基微流控分析系统的动态范围为50 - 600 μM,检测限为13.49 μM。该系统固定在衬衫内领口后,在高温条件(59°C)下展现出对热触发汗液传输和人体汗液中葡萄糖检测的强大能力。本研究不仅为高温作业人员的健康监测提供了一种低成本且易于穿戴的汗液分析工具,还拓展了形状记忆聚合物和基于纺织品的微流控装置在即时检测中的应用。