Ying Shu, Li Jiean, Huang Jinrong, Zhang Jia-Han, Zhang Jing, Jiang Yongchang, Sun Xidi, Pan Lijia, Shi Yi
Collaborative Innovation Center of Advanced Microstructures, School of Electronic Science and Engineering, Nanjing University, Nanjing 210093, China.
Nanomaterials (Basel). 2023 May 23;13(11):1702. doi: 10.3390/nano13111702.
Flexible pressure sensors that emulate the sensation and characteristics of natural skins are of great importance in wearable medical devices, intelligent robots, and human-machine interfaces. The microstructure of the pressure-sensitive layer plays a significant role in the sensor's overall performance. However, microstructures usually require complex and costly processes such as photolithography or chemical etching for fabrication. This paper proposes a novel approach that combines self-assembled technology to prepare a high-performance flexible capacitive pressure sensor with a microsphere-array gold electrode and a nanofiber nonwoven dielectric material. When subjected to pressure, the microsphere structures of the gold electrode deform via compressing the medium layer, leading to a significant increase in the relative area between the electrodes and a corresponding change in the thickness of the medium layer, as simulated in COMSOL simulations and experiments, which presents high sensitivity (1.807 kPa). The developed sensor demonstrates excellent performance in detecting signals such as slight object deformations and human finger bending.
能够模拟天然皮肤的感觉和特性的柔性压力传感器在可穿戴医疗设备、智能机器人和人机界面中具有重要意义。压敏层的微观结构对传感器的整体性能起着重要作用。然而,微观结构通常需要诸如光刻或化学蚀刻等复杂且昂贵的工艺来制造。本文提出了一种新颖的方法,该方法结合自组装技术来制备具有微球阵列金电极和纳米纤维非织造介电材料的高性能柔性电容式压力传感器。受压时,金电极的微球结构通过压缩介质层而变形,导致电极之间的相对面积显著增加以及介质层厚度相应变化,如在COMSOL模拟和实验中所模拟的那样,该传感器具有高灵敏度(1.807 kPa)。所开发的传感器在检测诸如轻微物体变形和人类手指弯曲等信号方面表现出优异的性能。