Xu Liqiang, Wang Weiwen, Zhang Lun, Wang Dong, Zhang Aimin
State Key Laboratory of Polymers Materials Engineering of China, Polymer Research Institute of Sichuan University, Chengdu 610065, P. R. China.
ACS Appl Mater Interfaces. 2022 May 11;14(18):21623-21635. doi: 10.1021/acsami.2c01345. Epub 2022 Apr 26.
Although flexible sensors have attracted considerable attention in emerging fields, including wearable electronics and soft robotics, their stability must be considered in practical applications, especially the effects of external factors on the sensing performance. Herein, a recyclable flexible sensor with superhydrophobicity and a highly sensitive strain response was developed by combining electrospinning and ultrasonication anchoring techniques. The constructed hierarchical network structure is composed of the fluorine-free superhydrophobic multiwalled carbon nanotubes and a porous elastomer membrane substrate reinforced by nanoparticles. The obtained sensor exhibited exceptional strain-sensing performance in terms of ultrahigh sensitivity (maximum gauge factor of 12 172.46), a fast response time of 80 ms, and excellent durability (10 000 cycles). Based on these outstanding merits, the strain sensor can detect various human motions without being interfered with by harsh environments. Moreover, superhydrophobic membranes can be combined with electronic devices for weather monitoring and underwater sensing. Noteworthily, damaged sensors can be quickly dissolved by a small amount of cyclohexane, enabling material recovery. The recyclable multifunctional membranes could reduce the potential pollution to the environment and show highly promising applications in complex environments.
尽管柔性传感器在包括可穿戴电子设备和软机器人技术在内的新兴领域引起了广泛关注,但在实际应用中必须考虑其稳定性,尤其是外部因素对传感性能的影响。在此,通过结合静电纺丝和超声锚固技术,开发了一种具有超疏水性和高灵敏应变响应的可回收柔性传感器。构建的分级网络结构由无氟超疏水多壁碳纳米管和由纳米颗粒增强的多孔弹性体膜基板组成。所制备的传感器在超高灵敏度(最大应变系数为12172.46)、80毫秒的快速响应时间和出色的耐久性(10000次循环)方面表现出优异的应变传感性能。基于这些突出优点,该应变传感器能够检测各种人体运动,且不受恶劣环境干扰。此外,超疏水膜可与电子设备结合用于天气监测和水下传感。值得注意的是,受损的传感器可以用少量环己烷快速溶解,实现材料回收。这种可回收的多功能膜可以减少对环境的潜在污染,并在复杂环境中显示出极具前景的应用。