Qian Yi, Wang Hao, Qu Zhen, Li Qiongya, Wang Dongdong, Yang Xindi, Qin Haijuan, Wei Haijie, Zhang Fusheng, Qing Guangyan
Hubei Key Laboratory of Biomass Fibers and Eco-dyeing & Finishing, College of Chemistry and Chemical Engineering, Wuhan Textile University, Wuhan 430200, P. R. China.
CAS Key Laboratory of Separation Science for Analytical Chemistry, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, P. R. China.
Mater Horiz. 2025 Jan 20;12(2):499-511. doi: 10.1039/d4mh01148a.
Given the ongoing requirements for versatility, sustainability, and biocompatibility in wearable applications, cellulose nanocrystal (CNC) photonic materials emerge as excellent candidates for multi-responsive wearable devices due to their tunable structural color, strong electron-donating capacity, and renewable nature. Nonetheless, most CNC-derived materials struggle to incorporate color-changing and electrical sensing into one system since the self-assembly of CNCs is incompatible with conventional conductive mediums. Here we report the design of a conductive photonic patch through constructing a CNC/polyvinyl alcohol hydrogel modulated by phytic acid (PA). The introduction of PA significantly enhances the hydrogen bonding interaction, resulting in the composite film with impressive flexibility (1.4 MJ m) and progressive color changes from blue, green, yellow, to ultimately red upon sweat wetting. Interestingly, this system simultaneously demonstrates selective and sensitive electrical sensing functions, as well as satisfactory biocompatibility, biodegradability, and breathability. Importantly, a proof-of-concept demonstration of a skin-adhesive patch is presented, where the optical and electrical dual-signal sweat sensing allows for intuitive visual and multimode electric localization of sweat accumulation during physical exercises. This innovative interactive strategy for monitoring human metabolites could offer a fresh perspective into the design of wearable health-sensing devices, while greatly expanding the applications of CNC-based photonic materials in medicine-related fields.
鉴于可穿戴应用对多功能性、可持续性和生物相容性的持续需求,纤维素纳米晶体(CNC)光子材料因其可调谐的结构颜色、强供电子能力和可再生特性,成为多响应可穿戴设备的理想候选材料。然而,大多数源自CNC的材料难以将颜色变化和电传感整合到一个系统中,因为CNC的自组装与传统导电介质不相容。在此,我们报告了一种通过构建由植酸(PA)调制的CNC/聚乙烯醇水凝胶来设计导电光子贴片的方法。PA的引入显著增强了氢键相互作用,从而使复合膜具有令人印象深刻的柔韧性(1.4 MJ m),并且在汗水浸湿时会发生从蓝色、绿色、黄色到最终红色的渐进颜色变化。有趣的是,该系统同时展示了选择性和灵敏的电传感功能,以及令人满意的生物相容性、生物降解性和透气性。重要的是,展示了一种皮肤贴片的概念验证,其中光学和电双信号汗液传感能够在体育锻炼期间对汗液积聚进行直观的视觉和多模式电定位。这种用于监测人体代谢物的创新交互策略可为可穿戴健康传感设备的设计提供新的视角,同时极大地扩展基于CNC的光子材料在医学相关领域的应用。