Wu Xianzhang, Li Zhangpeng, Zhu Yuan, Wang Jinqing, Yang Shengrong
Hunan Province Key Laboratory of Materials Surface & Interface Science and Technology, College of Material Science and Engineering, Central South University of Forestry and Technology, Changsha 410004, P. R. China.
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, P. R. China.
ACS Appl Mater Interfaces. 2021 Jun 9;13(22):26352-26361. doi: 10.1021/acsami.1c04080. Epub 2021 May 25.
Extremely low density carbon nanotubes/graphene hybrid aerogels (CNG) are highly potential active materials for fabricating flexible devices, owing to synergistic effects with one (nanotubes) and two (graphene) dimensional characters in a single structure. However, conquering the long-standing dilemma among low electronic conductivity and inferior mechanical properties for CNG remains a challenging task. Here, an ultralight CNG aerogel (1.52 mg cm) with prominent electronic conductivity and mechanical resilience is facilely fabricated through a triple roles design of the sodium dodecyl sulfate (SDS), namely anchoring metal ions, dispersing carbon nanotubes, and inducing self-assembly. It is demonstrated that the Ba can be effectively anchored into the GO interlayers by coupling it with the SDS to reinforce the intersheet interactions, thereby achieving remarkable improvement in mechanical properties (Young's moduli up to 18.3 kPa). Density functional theory calculations reveal that the anchored Ba acting as molecular bridges can availably reduce the tunneling barrier between the GO sheets and facilitate the multidirectional and fast transport of electronics, inducing the high electrical conductivity of CNG (12.55 S cm). Taking advantage of these features, potential applications in flexible sensing devices have been demonstrated utilizing the remarkable CNG as an active material, giving extraordinary sensing performance including high sensitivity (48.6 kPa), ultralow detection limit (10 Pa), and ultrafast response (18 ms).
极低密度碳纳米管/石墨烯杂化气凝胶(CNG)由于在单一结构中具有一维(纳米管)和二维(石墨烯)特征的协同效应,是制造柔性器件极具潜力的活性材料。然而,克服CNG长期存在的低电导率和较差机械性能之间的困境仍然是一项具有挑战性的任务。在此,通过十二烷基硫酸钠(SDS)的三重作用设计,即锚定金属离子、分散碳纳米管和诱导自组装,轻松制备了一种具有突出电导率和机械弹性的超轻CNG气凝胶(1.52 mg cm)。结果表明,通过将Ba与SDS偶联,可有效地将其锚定到氧化石墨烯(GO)层间,以增强层间相互作用,从而显著提高机械性能(杨氏模量高达18.3 kPa)。密度泛函理论计算表明,锚定的Ba作为分子桥,可以有效降低GO片层之间的隧穿势垒,促进电子的多向快速传输,从而使CNG具有高电导率(12.55 S cm)。利用这些特性,以优异的CNG作为活性材料,在柔性传感装置中展示了潜在应用,具有非凡的传感性能,包括高灵敏度(48.6 kPa)、超低检测限(10 Pa)和超快响应(18 ms)。