School of Chemistry and Chemical Engineering , Beijing Institute of Technology , Beijing 100081 , P. R. China.
ACS Appl Mater Interfaces. 2019 Mar 20;11(11):10736-10744. doi: 10.1021/acsami.9b00274. Epub 2019 Mar 8.
Flexible conductors are emerging soft materials for diverse electrical applications. However, it still remains a great challenge to fabricate high-performance soft conductors that are highly conductive, largely stretchable, and rapid room-temperature self-healable. Here, we design and fabricate flexible conductive bilayer composite films composed of healable elastomeric substrates and wrinkled graphenes. The elastomeric substrates, obtained by a facile bulk copolymerization of N-isopropylacrylamide and 2-methoxyethyl acrylate, show fast room-temperature self-healing efficiency of up to 96%, imparted by the reversible hydrogen bonds. Importantly, the substrates also display strong interfacial adhesion crucial to the formation of stable bilayer composite films based on a prestrain route. The synergy between self-healing of the substrates and wrinkled structures of graphene is endowed to the composite films for mechanical and electrical healing. By adjusting the prestrain ratio of the substrates, the composite films could display the tunable stretchability, conductivity, and self-healing. The optimal bilayer composite film exhibits a high conductivity of 126 S cm, a large stretchability of 300%, and rapid room-temperature self-healing. Moreover, it is demonstrated that the composite films are strain-sensitive and can be used as strain sensors to monitor stretching deformation and human motion. These prominent demonstrations suggest a great potential of the bilayer composite films in next-generation wearable electronics.
柔性导体是用于各种电气应用的新兴软材料。然而,制造高性能的软导体仍然是一个巨大的挑战,这些软导体需要具有高导电性、大拉伸性和快速室温自修复能力。在这里,我们设计并制造了由可修复弹性体基底和褶皱石墨烯组成的柔性导电双层复合薄膜。弹性体基底是通过 N-异丙基丙烯酰胺和 2-甲氧基乙基丙烯酸酯的简单本体共聚获得的,具有高达 96%的快速室温自修复效率,这归因于可逆氢键。重要的是,基底还表现出强界面附着力,这对于基于预应变路径形成稳定的双层复合薄膜至关重要。基底的自修复和石墨烯的褶皱结构之间的协同作用赋予了复合薄膜机械和电气修复的能力。通过调整基底的预应比值,复合薄膜可以表现出可调的拉伸性、导电性和自修复性。最佳的双层复合薄膜表现出 126 S cm 的高导电性、300%的大拉伸性和快速室温自修复性。此外,还证明了复合薄膜具有应变敏感性,可以用作应变传感器来监测拉伸变形和人体运动。这些突出的表现表明双层复合薄膜在下一代可穿戴电子设备中有很大的应用潜力。