Zhang Zeying, Wang Yijing, Zhang Cuiling, Zhan Wang, Zhang Qi, Xue Li, Xu Zhe, Peng Niancai, Jiang Zhuangde, Ye Zhilu, Liu Ming, Zhang Xiaohui
State Key Laboratory for Manufacturing Systems Engineering, The Key Laboratory of Biomedical Information Engineering of Ministry of Education, Center for Mitochondrial Biology and Medicine, School of Life Science and Technology, International Joint Laboratory for Micro/Nano Manufacturing and Measurement Technology, Xi'an Key Laboratory for Biomedical Testing and High-End Equipment, Xi'an Jiaotong University, Xi'an 710049, Shannxi, P. R. China.
State Key Laboratory for Manufacturing Systems Engineering, Electronic Materials Research Laboratory, Key Laboratory of the Ministry of Education, Engineering Research Center of Spin Quantum Sensor Chips, Universities of Shaanxi Province, School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an 710049, P. R. China.
ACS Appl Mater Interfaces. 2024 Sep 25;16(38):50524-50533. doi: 10.1021/acsami.4c12957. Epub 2024 Sep 12.
Recently, there has been a burgeoning interest in flexible shear force sensors capable of precisely detecting both magnitude and direction. Despite considerable efforts, the challenge of achieving accurate direction recognition persists, primarily due to the inherent structural characteristics and sensing mechanisms. Here, we present a shear force sensor constructed by a magnetically induced assembled Ni/PDMS composite membrane, which is magnetized and integrated with a three-axis Hall sensor, facilitating its ability to simultaneously monitor both shear force magnitude (0.7-87 mN) and direction (0-360°). The cilia-inspired shear force magnetic sensor (CISFMS) exhibits admirable attributes, including exceptional flexibility, high sensitivity (0.76 mN), an exceedingly low detection limit (1° and 0.7 mN), and remarkable durability (over 10,000 bending cycles). Further, our results demonstrate the capacity of the CISFMS in detecting tactile properties, fluid velocity, and direction, offering substantial potential for future developments in wearable electronics.
最近,人们对能够精确检测大小和方向的柔性剪切力传感器的兴趣与日俱增。尽管付出了巨大努力,但实现准确方向识别的挑战依然存在,这主要归因于其固有的结构特性和传感机制。在此,我们展示了一种由磁诱导组装的镍/聚二甲基硅氧烷(Ni/PDMS)复合膜构建的剪切力传感器,该复合膜被磁化并与三轴霍尔传感器集成,使其能够同时监测剪切力大小(0.7 - 87毫牛)和方向(0 - 360°)。受纤毛启发的剪切力磁传感器(CISFMS)具有令人钦佩的特性,包括出色的柔韧性、高灵敏度(0.76毫牛)、极低的检测限(1°和0.7毫牛)以及卓越的耐用性(超过10,000次弯曲循环)。此外,我们的结果证明了CISFMS在检测触觉特性、流体速度和方向方面的能力,为可穿戴电子产品的未来发展提供了巨大潜力。