| Literature DB >> 32255345 |
Hongjian Zhang1, Wenqi Han1, Kui Xu2, Yu Zhang3, Yufei Lu1, Zhentao Nie1, Yuhang Du1, Jixin Zhu1,2, Wei Huang1,2.
Abstract
Flexible strain sensors have been widely investigated with their rapid development in human-machine interfaces, soft robots, and medical care monitoring. Here, we report a new in situ catalytic strategy toward the fabrication of metallic aerogel hybrids, which are composed of vanadium nitride (VN) nanosheets decorated with well-defined vertically aligned carbon nanotube arrays (VN/CNTs) for the first time. In this architecture, the two-dimensional VN nanosheets as the main bone structure are favorable for the flexible devices due to their excellent structural compatibility during the repetitive deforming process. In addition, the sandwiched aerogel hybrids form highly conductive 3D network, affording outstanding sensitivity for the strain-responsive behaviors. Further, the VN/CNTs-based flexible strain sensors are successfully fabricated, showing a high gauge factor of 386 within a small strain of 10%, fast response, and extraordinary durability. The monitoring of physical signals and an actual real-time human-machine controlling system based on the sensors are also presented.Entities:
Keywords: carbon nanotube; flexible strain sensor; human-machine interaction; signal monitoring; vanadium nitride
Year: 2020 PMID: 32255345 DOI: 10.1021/acs.nanolett.0c00372
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189