Key Laboratory of Marine Materials and Related Technologies, Zhejiang Key Laboratory of Marine Materials and Protective Technologies , Ningbo Institute of Material Technology and Engineering, Chinese Academy of Sciences , Zhongguan West Road 1219 , 315201 Ningbo , China.
University of Chinese Academy of Science , Beijing 100049 , China.
ACS Nano. 2019 Apr 23;13(4):4368-4378. doi: 10.1021/acsnano.8b09600. Epub 2019 Apr 12.
As promising candidates for intelligent biomimetic applications similar to living organisms, smart soft materials have aroused extensive interest due to their extraordinarily designable structures and functionality. Herein, a bubble-like elastomer-based electronic skin that can be pneumatically actuated is achieved through hydrophilic/hydrophobic interphase mediated asymmetric functionalization. The asymmetric and controllable introduction of elastic polydimethylsiloxane into the carbon nanotube film at the air/water interface can endow the Janus ultrathin film with tunable conductivity, self-adhesivity, self-adaptivity, and even self-sealing properties. As a result, the Janus films can be employed as multifunctional electronics, including self-adhesive strain sensing/thermal managing devices and even noncontact mechanical sensors as artificial eardrums for tiny air-pressure detection. Significantly, these excellent features can further enable the integration of actuating and sensing functions. As a proof of concept, the Janus film can serve as a self-supported device to simultaneously imitate the controllable contracting/expanding behaviors of the vocal sac of frog and monitor the real-time current change in this process, demonstrating significant potential in smart bionic applications.
作为类似于生物体的智能仿生应用的有前途的候选者,智能软材料由于其极其可设计的结构和功能而引起了广泛的兴趣。在此,通过亲水性/疏水性相间介导的不对称功能化,实现了一种可气动驱动的基于气泡状弹性体的电子皮肤。在空气/水界面处不对称且可控地将弹性聚二甲基硅氧烷引入到碳纳米管膜中,可以赋予 Janus 超薄膜可调的导电性、自粘性、自适应性,甚至自密封性能。结果,Janus 薄膜可用作多功能电子产品,包括自粘性应变传感/热管理器件,甚至非接触式机械传感器,用作用于微小气压检测的人工鼓膜。重要的是,这些优异的特性可以进一步实现致动和传感功能的集成。作为概念验证,Janus 薄膜可用作自支撑装置,同时模拟青蛙声囊的可控收缩/膨胀行为,并监测此过程中的实时电流变化,在智能仿生应用中具有显著的潜力。