| Literature DB >> 35306697 |
Jiuwei Gao1,2, Yubo Fan3, Qingtian Zhang4, Lei Luo1,2, Xiaoqi Hu1,2, Yue Li1,2, Juncai Song1,2, Hanjun Jiang1,2, Xiaoyu Gao1,2, Lu Zheng1,2,5, Wu Zhao3, Zhenhua Wang1,2,5, Wei Ai1,2,5, Yuan Wei1,2,5, Qianbo Lu1,2,5, Manzhang Xu1,2,5, Yongtian Wang4,6, Weitao Song4, Xuewen Wang1,2,5, Wei Huang1,2,5,7,8.
Abstract
Fibrous material with high strength and large stretchability is an essential component of high-performance wearable electronic devices. Wearable electronic systems require a material that is strong to ensure durability and stability, and a wide range of strain to expand their applications. However, it is still challenging to manufacture fibrous materials with simultaneously high mechanical strength and the tensile property. Herein, the ultra-robust (≈17.6 MPa) and extensible (≈700%) conducting microfibers are developed and demonstrated their applications in fabricating fibrous mechanical sensors. The mechanical sensor shows high sensitivity in detecting strains that have high strain resolution and a large detection range (from 0.0075% to 400%) simultaneously. Moreover, low frequency vibrations between 0 and 40 Hz are also detected, which covers most tremors that occur in the human body. As a further step, a wearable and smart health-monitoring system has been developed using the fibrous mechanical sensor, which is capable of monitoring health-related physiological signals, including muscle movement, body tremor, wrist pulse, respiration, gesture, and six body postures to predict and diagnose diseases, which will promote the wearable telemedicine technology.Entities:
Keywords: conducting microfibers; fibrous mechanical sensors; smart health-monitoring system; wearable telemedicine technology
Mesh:
Year: 2022 PMID: 35306697 DOI: 10.1002/adma.202107511
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849