Peng Zhiwei, Ng Allen L, Kwon Hyejin, Wang Peng, Chen Chien-Fu, Lee Cheng S, Wang YuHuang
Department of Chemistry and Biochemistry, University of Maryland, College Park, MD, 20742, United States.
Institute of Applied Mechanics, National Taiwan University, Taipei, 106, Taiwan.
Carbon N Y. 2017 Dec;125:49-55. doi: 10.1016/j.carbon.2017.09.031. Epub 2017 Sep 11.
Single-walled carbon nanotubes (SWCNTs) hold vast potential for future electronic devices due to their outstanding properties, however covalent functionalization often destroys the intrinsic properties of SWCNTs, thus limiting their full potential. Here, we demonstrate the fabrication of a functionalized graphene/semiconducting SWCNT (T@fG) heterostructured thin film transistor as a chemical sensor. In this structural configuration, graphene acts as an atom-thick, impermeable layer that can be covalently functionalized facile diazonium chemistry to afford a high density of surface functional groups while protecting the underlying SWCNT network from chemical modification, even during a covalent chemical reaction. As a result, the highly functionalized carbon-based hybrid structure exhibits excellent transistor properties with a carrier mobility and ON/OFF ratio as high as 64 cm/Vs and 5400, respectively. To demonstrate its use in potential applications, T@fG thin films were fabricated as aqueous ammonium sensors exhibiting a detection limit of 0.25 μM in a millimolar ionic strength solution, which is comparable with state-of-the-art aqueous ammonium nanosensors.
单壁碳纳米管(SWCNTs)因其卓越的性能在未来电子设备中具有巨大潜力,然而共价功能化常常会破坏SWCNTs的固有特性,从而限制了它们的全部潜力。在此,我们展示了一种作为化学传感器的功能化石墨烯/半导体单壁碳纳米管(T@fG)异质结构薄膜晶体管的制备。在这种结构配置中,石墨烯充当原子厚度的不可渗透层,可通过简便的重氮化学进行共价功能化,以提供高密度的表面官能团,同时保护底层的SWCNT网络免受化学修饰,即使在共价化学反应期间也是如此。结果,这种高度功能化的碳基混合结构表现出优异的晶体管性能,载流子迁移率和开/关比分别高达64 cm²/V·s和5400。为了证明其在潜在应用中的用途,制备了T@fG薄膜作为水性铵传感器,在毫摩尔离子强度溶液中的检测限为0.25 μM,这与最先进的水性铵纳米传感器相当。