Li Rui, Gou Xin, Li Xinyan, Wang Hainuo, Ruan Haibo, Xiong Yuting, Tang Xianlun, Li Yuanyuan, Yang Ping-An
School of Automation, Chongqing University of Posts and Telecommunications, Chongqing 400065, China.
China Telecom Sichuan Corporation, Chengdu 610041, China.
Molecules. 2022 Jul 23;27(15):4717. doi: 10.3390/molecules27154717.
Flexible strain sensors, when considering high sensitivity and a large strain range, have become a key requirement for current robotic applications. However, it is still a thorny issue to take both factors into consideration at the same time. Here, we report a sandwich-structured strain sensor based on Fe nanowires (Fe NWs) that has a high GF (37-53) while taking into account a large strain range (15-57.5%), low hysteresis (2.45%), stability, and low cost with an areal density of Fe NWs of 4.4 mg/cm. Additionally, the relationship between the contact point of the conductive network, the output resistance, and the areal density of the sensing unit is analyzed. Microscopically, the contact points of the conductive network directly affect the sensor output resistance distribution, thereby affecting the gauge factor (GF) of the sensor. Macroscopically, the areal density and the output resistivity of the strain sensor have the opposite percolation theory, which affects its linearity performance. At the same time, there is a positive correlation between the areal density and the contact point: when the stretching amount is constant, it theoretically shows that the areal density affects the GF. When the areal density reaches this percolation threshold range, the sensing performance is the best. This will lay the foundation for rapid applications in wearable robots.
在考虑高灵敏度和大应变范围时,柔性应变传感器已成为当前机器人应用的关键需求。然而,同时兼顾这两个因素仍然是一个棘手的问题。在此,我们报道一种基于铁纳米线(Fe NWs)的三明治结构应变传感器,其具有高应变系数(37 - 53),同时兼顾大应变范围(15 - 57.5%)、低滞后(2.45%)、稳定性以及低成本,铁纳米线的面密度为4.4 mg/cm 。此外,还分析了导电网络的接触点、输出电阻与传感单元面密度之间的关系。微观上,导电网络的接触点直接影响传感器输出电阻分布,进而影响传感器的应变系数(GF)。宏观上,应变传感器的面密度与输出电阻率呈现相反的渗流理论,这影响其线性性能。同时,面密度与接触点之间存在正相关关系:当拉伸量恒定时,理论上表明面密度会影响应变系数。当面密度达到该渗流阈值范围时,传感性能最佳。这将为在可穿戴机器人中的快速应用奠定基础。