Wang Zhenwei, Luan Congcong, Liao Guangxin, Liu Jiapeng, Yao Xinhua, Fu Jianzhong
State Key Laboratory of Fluid Power and Mechatronic Systems, College of Mechanical Engineering, Zhejiang University, Hangzhou 310027, China.
Key Laboratory of 3D Printing Process and Equipment of Zhejiang Province, College of Mechanical Engineering, Zhejiang University, Hangzhou 310027, China.
ACS Appl Mater Interfaces. 2021 May 19;13(19):23038-23048. doi: 10.1021/acsami.1c06295. Epub 2021 May 6.
High-performance stretchable strain sensors, particularly those with high sensitivity and broad sensing range, are highly important for wearable devices. Herein, a novel auxetic bilayer conductive mesh strain sensor (ABSS), composed of multi-hardness silicones, is proposed and fabricated by the direct ink writing 3D printing and ink spraying technique. The bilayer conductive mesh comprises a thin layer of high-conductive and crack-prone single-walled carbon nanotubes (SWCNTs) coated on a stretchable carbon-black-doped Ecoflex silicone rubber (CB/Ecoflex) mesh. The former serves as the dominant sensing material by generating SWCNT cracks in the full strain range, while the latter mainly plays the roles of both generating the resistance change and maintaining the conductive paths under high strain conditions. The presence of high-hardness auxetic frame contributes to the formation of longitudinal SWCNT cracks on transverse meshes, enhancing the sensitivity of the sensors. It is shown that the synergistic effect of the bilayer conductive mesh, strain concentration, and auxetic deformation strategy endow ABSS with a high gauge factor (∼ 13.4) that is 6.6 times larger than that of the common sensor. Additionally, this study demonstrates the superior sensing performance of the ABSS for wearable applications including swallowing recognition, respiration monitoring, and joint movement detection.
高性能可拉伸应变传感器,尤其是那些具有高灵敏度和宽传感范围的传感器,对于可穿戴设备至关重要。在此,提出并通过直接墨水书写3D打印和墨水喷涂技术制造了一种新型的由多硬度硅酮组成的负泊松比双层导电网格应变传感器(ABSS)。双层导电网格由涂覆在可拉伸炭黑掺杂的Ecoflex硅橡胶(CB/Ecoflex)网格上的一层薄的高导电性且易开裂的单壁碳纳米管(SWCNT)组成。前者通过在整个应变范围内产生SWCNT裂纹作为主要传感材料,而后者主要在高应变条件下起到产生电阻变化和维持导电路径的作用。高硬度负泊松比框架的存在有助于在横向网格上形成纵向SWCNT裂纹,提高了传感器的灵敏度。结果表明,双层导电网格、应变集中和负泊松比变形策略的协同作用赋予ABSS高达约13.4的应变系数,比普通传感器大6.6倍。此外,本研究证明了ABSS在包括吞咽识别、呼吸监测和关节运动检测等可穿戴应用中的卓越传感性能。