| Literature DB >> 32040310 |
Yongfa Cheng1, Yanan Ma2, Luying Li1, Meng Zhu1, Yang Yue1, Weijie Liu1, Longfei Wang1, Shuangfeng Jia3, Chen Li1, Tianyu Qi1, Jianbo Wang3, Yihua Gao1.
Abstract
Recently, wearable and flexible pressure sensors have sparked tremendous research interest, and considerable applications including human activity monitoring, biomedical research, and artificial intelligence interaction are reported. However, the large-scale preparation of low-cost, high-sensitivity piezoresistive sensors still face huge challenges. Inspired by the specific structures and excellent metal conductivity of a family of two-dimensional (2D) transition-metal carbides and nitrides (MXene) and the high-performance sensing effect of human skin including randomly distributed microstructural receptors, we fabricate a highly sensitive MXene-based piezoresistive sensor with bioinspired microspinous microstructures formed by a simple abrasive paper stencil printing process. The obtained piezoresistive sensor shows high sensitivity (151.4 kPa-1), relatively short response time (<130 ms), subtle pressure detection limit of 4.4 Pa, and excellent cycle stability over 10,000 cycles. The mechanism of the high sensitivity of the sensor is dynamically revealed from the structural perspective by means of in situ electron microscopy experiment and finite element simulation. Bioinspired microspinous microstructures can effectively improve the sensitivity of the pressure sensor and the limit of the detectable subtle pressure. In practice, the sensor shows great performance in monitoring human physiological signals, detecting quantitatively pressure distributions, and remote monitoring of intelligent robot motion in real time.Entities:
Keywords: MXene; bioinspired microspines; flexible piezoresistive sensor; human−computer interaction; random distribution
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Year: 2020 PMID: 32040310 DOI: 10.1021/acsnano.9b08952
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881