Liang Yuning, Ding Qiongling, Wang Hao, Wu Zixuan, Li Jianye, Li Zhenyi, Tao Kai, Gui Xuchun, Wu Jin
State Key Laboratory of Optoelectronic Materials and Technologies and the Guangdong Province Key Laboratory of Display Material and Technology, School of Electronics and Information Technology, Sun Yat-Sen University, Guangzhou, 510275, People's Republic of China.
Ministry of Education Key Laboratory of Micro and Nano Systems for Aerospace, Northwestern Polytechnical University, Xi'an, 710072, People's Republic of China.
Nanomicro Lett. 2022 Sep 12;14(1):183. doi: 10.1007/s40820-022-00934-1.
Respiratory monitoring plays a pivotal role in health assessment and provides an important application prospect for flexible humidity sensors. However, traditional humidity sensors suffer from a trade-off between deformability, sensitivity, and transparency, and thus the development of high-performance, stretchable, and low-cost humidity sensors is urgently needed as wearable electronics. Here, ultrasensitive, highly deformable, and transparent humidity sensors are fabricated based on cost-effective polyacrylamide-based double network hydrogels. Concomitantly, a general method for preparing hydrogel films with controllable thickness is proposed to boost the sensitivity of hydrogel-based sensors due to the extensively increased specific surface area, which can be applied to different polymer networks and facilitate the development of flexible integrated electronics. In addition, sustainable tapioca rich in hydrophilic polar groups is introduced for the first time as a second cross-linked network, exhibiting excellent water adsorption capacity. Through the synergistic optimization of structure and composition, the obtained hydrogel film exhibits an ultrahigh sensitivity of 13,462.1%/%RH, which is unprecedented. Moreover, the hydrogel film-based sensor exhibits excellent repeatability and the ability to work normally under stretching with even enhanced sensitivity. As a proof of concept, we integrate the stretchable sensor with a specially designed wireless circuit and mask to fabricate a wireless respiratory interruption detection system with Bluetooth transmission, enabling real-time monitoring of human health status. This work provides a general strategy to construct high-performance, stretchable, and miniaturized hydrogel-based sensors as next-generation wearable devices for real-time monitoring of various physiological signals.
呼吸监测在健康评估中起着关键作用,并为柔性湿度传感器提供了重要的应用前景。然而,传统湿度传感器在可变形性、灵敏度和透明度之间存在权衡,因此作为可穿戴电子设备,迫切需要开发高性能、可拉伸且低成本的湿度传感器。在此,基于具有成本效益的聚丙烯酰胺基双网络水凝胶制备了超灵敏、高度可变形且透明的湿度传感器。同时,提出了一种制备厚度可控的水凝胶薄膜的通用方法,以提高基于水凝胶的传感器的灵敏度,因为比表面积大幅增加,该方法可应用于不同的聚合物网络,并促进柔性集成电子器件的发展。此外,首次引入富含亲水性极性基团的可持续木薯作为第二交联网络,其表现出优异的吸水能力。通过结构和组成的协同优化,所得水凝胶薄膜表现出13462.1%/%RH的超高灵敏度,这是前所未有的。此外,基于水凝胶薄膜的传感器表现出优异的重复性,并且在拉伸下仍能正常工作,甚至灵敏度有所提高。作为概念验证,我们将可拉伸传感器与专门设计的无线电路和面罩集成,制造出具有蓝牙传输功能的无线呼吸中断检测系统,能够实时监测人体健康状况。这项工作提供了一种通用策略,以构建高性能、可拉伸且小型化的基于水凝胶的传感器,作为下一代可穿戴设备用于实时监测各种生理信号。