Tang Zhenhua, Jia Shuhai, Shi Xuesong, Li Bo, Zhou Chenghao
School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Polymers (Basel). 2019 Apr 11;11(4):666. doi: 10.3390/polym11040666.
Despite the tremendous efforts dedicated to developing various wearable piezoresistive sensors with sufficient stretchability and high sensitivity, challenges remain pertaining to fabrication scalability, cost, and efficiency. In this study, a facile, scalable, and low-cost coaxial printing strategy is employed to fabricate stretchable and flexible fibers with a core-sheath structure for wearable strain sensors. The highly viscous silica-modified silicone elastomer solution is used to print the insulating sheath layer, and the silicone elastomer solutions containing multi-walled carbon nanotubes (CNTs) are used as the core inks to print the conductive inner layer. With the addition of silica powders as viscosifiers, silica-filled silicone ink (sheath ink) converts to printable ink. The dimensions of the printed coaxial fibers can be flexibly controlled via adjusting the extrusion pressure of the inks. In addition, the electro-mechanical responses of the fiber-shaped strain sensors are investigated. The printed stretchable and wearable fiber-like CNT-based strain sensor exhibits outstanding sensitivities with gauge factors (GFs) of 1.4 to 2.5 × 10⁶, a large stretchability of 150%, and excellent waterproof performance. Furthermore, the sensor can detect a strain of 0.1% and showed stable responses for over 15,000 cycles (high durability). The printed fiber-shaped sensor demonstrated capabilities of detecting and differentiating human joint movements and monitoring balloon inflation. These results obtained demonstrate that the one-step printed fiber-like strain sensors have potential applications in wearable devices, soft robotics, and electronic skins.
尽管人们付出了巨大努力来开发各种具有足够拉伸性和高灵敏度的可穿戴压阻式传感器,但在制造可扩展性、成本和效率方面仍然存在挑战。在本研究中,采用了一种简便、可扩展且低成本的同轴打印策略,来制造具有芯鞘结构的可拉伸且柔性的纤维,用于可穿戴应变传感器。高粘性二氧化硅改性硅橡胶弹性体溶液用于打印绝缘鞘层,而含有多壁碳纳米管(CNT)的硅橡胶弹性体溶液用作芯油墨来打印导电内层。通过添加二氧化硅粉末作为增稠剂,二氧化硅填充的硅油墨(鞘油墨)转变为可打印油墨。通过调节油墨的挤出压力,可以灵活控制打印的同轴纤维的尺寸。此外,还研究了纤维状应变传感器的机电响应。打印的基于CNT的可拉伸且可穿戴的纤维状应变传感器表现出出色的灵敏度,应变片系数(GF)为1.4至2.5×10⁶,具有150%的大拉伸性以及优异的防水性能。此外,该传感器能够检测0.1%的应变,并在超过15000次循环中表现出稳定的响应(高耐久性)。打印的纤维状传感器展示了检测和区分人体关节运动以及监测气球充气的能力。所获得的这些结果表明,一步打印的纤维状应变传感器在可穿戴设备、软体机器人和电子皮肤方面具有潜在应用。