Wei Jie, Jia Shuai, Guan Jie, Ma Chao, Shao Ziqiang
Beijing Engineering Research Center of Cellulose and Its Derivatives, School of Materials Science and Engineering, Beijing Institute of Technology, Beijing 100081, P. R. China.
Beijing Key Laboratory of Wood Science and Engineering, Beijing Forestry University, No. 35 Tsinghua East Road, Haidian District, Beijing 100083, P. R. China.
ACS Appl Mater Interfaces. 2021 Nov 17;13(45):54417-54427. doi: 10.1021/acsami.1c17894. Epub 2021 Nov 4.
The design of humidity actuators with high response sensitivity (especially actuation time) while maintaining favorable mechanical properties is important for advanced intelligent manufacturing, like soft robotics and smart devices, but still remains a challenge. Here, we fabricate a robust and conductive composite film-based humidity actuator with synergetic benefits from one-dimensional cellulose nanofibers (CNFs) and carbon nanotubes (CNTs) as well as two-dimensional graphene oxide (GO) via an efficient vacuum-assisted self-assembly method. Owing to the excellent moisture sensitivity of CNF and GO, the hydrophobic CNT favoring rapid desorption of water molecules, and the unique porous structure with numerous nanochannels for accelerating the water exchange rate, this CNF/GO/CNT composite film delivers excellent actuation including an ultrafast response/recovery (0.8/2 s), large deformation, and sufficient cycle stability (no detectable degradation after 1000 cycles) in response to ambient gradient humidity. Intriguingly, the actuator could also achieve a superior flexibility, a good mechanical strength (201 MPa), a desirable toughness (6.6 MJ/m), and stable electrical conductivity. Taking advantage of these benefits, the actuator is conceptually fabricated into various smart devices including mechanical grippers, crawling robotics, and humidity control switches, which is expected to hold great promise toward practical applications.
设计出具有高响应灵敏度(尤其是驱动时间)同时保持良好机械性能的湿度致动器,对于先进智能制造(如软体机器人和智能设备)至关重要,但仍然是一项挑战。在此,我们通过一种高效的真空辅助自组装方法,制备了一种基于具有协同效应的一维纤维素纳米纤维(CNF)、碳纳米管(CNT)以及二维氧化石墨烯(GO)的坚固且导电的复合薄膜湿度致动器。由于CNF和GO具有优异的湿度敏感性,疏水性的CNT有利于水分子快速解吸,以及具有众多纳米通道以加速水交换速率的独特多孔结构,这种CNF/GO/CNT复合薄膜在响应环境梯度湿度时具有出色的驱动性能,包括超快的响应/恢复(0.8/2秒)、大变形和足够的循环稳定性(1000次循环后无明显降解)。有趣的是,该致动器还能实现卓越的柔韧性、良好的机械强度(201兆帕)、理想的韧性(6.6兆焦/立方米)以及稳定的导电性。利用这些优点,该致动器在概念上被制造成各种智能设备,包括机械夹具、爬行机器人和湿度控制开关,有望在实际应用中具有广阔前景。