Zhan Luyao, Xu Wanxuan, Hu Zixi, Fan Jiayin, Sun Luping, Wang Xingchi, Zhang Yingying, Shi Xiaodi, Ding Bin, Yu Jianyong, Ma Ying
Key Laboratory of Textiles Science and Technology of Ministry of Education, College of Textiles, Donghua University, Shanghai, 201620, China.
Innovation Center for Textile Science and Technology, Donghua University, Shanghai, 200051, China.
Small. 2024 Jul;20(29):e2310762. doi: 10.1002/smll.202310762. Epub 2024 Feb 16.
Responsive thermochromic fiber materials capable of miniaturization and integrating comfortably and compliantly onto the soft and dynamically deforming human body are promising materials for visualized personal health monitoring. However, their development is hindered by monotonous colors, low-contrast color changes, and poor reversibility. Herein, full-color "off-on" thermochromic fluorescent fibers are prepared based on self-crystallinity phase change and Förster resonance energy transfer for long-term and passive body-temperature monitoring, especially for various personalized customization purposes. The off-on switching luminescence characteristic is derived from the reversible conversion of the dispersion state and fluorescent emission by fluorophores and quencher molecules, which are embedded in the matrix of a phase-change material, during the crystallizing/melting processes. The achievement of full-color fluorescence is attributed to the large modulation range of fluorescence colors according to primary color additive theory. These thermochromic fluorescent fibers exhibit good mechanical properties, fluorescent emission contrast, and reversibility, showing their great potential in flexible smart display devices. Moreover, the response temperature of the thermochromic fibers is controllable by adjusting the phase-change material, enabling body-temperature-triggered luminescence; this property highlights their potential for human body-temperature monitoring and personalized customization. This work presents a new strategy for designing and exploring flexible sensors with higher comprehensive performances.
能够小型化并舒适且贴合地集成到柔软且动态变形的人体上的响应型热致变色纤维材料,是用于可视化个人健康监测的有前景的材料。然而,它们的发展受到颜色单调、颜色变化对比度低和可逆性差的阻碍。在此,基于自结晶相变和Förster共振能量转移制备了全彩“关-开”热致变色荧光纤维,用于长期和被动的体温监测,特别是用于各种个性化定制目的。“关-开”切换发光特性源于荧光团和猝灭分子在结晶/熔化过程中在相变材料基质中的分散状态和荧光发射的可逆转换。全彩荧光的实现归因于根据原色加法理论的荧光颜色的大调制范围。这些热致变色荧光纤维表现出良好的机械性能、荧光发射对比度和可逆性,在柔性智能显示设备中显示出巨大潜力。此外,热致变色纤维的响应温度可通过调节相变材料来控制,实现体温触发发光;这一特性突出了它们在人体体温监测和个性化定制方面的潜力。这项工作提出了一种设计和探索具有更高综合性能的柔性传感器的新策略。