Department of Physics and Astronomy, Wayne State University, Detroit, MI 48201, USA.
Nanotechnology. 2011 Jul 1;22(26):265201. doi: 10.1088/0957-4484/22/26/265201. Epub 2011 May 17.
We have fabricated suspended few-layer (1-3 layers) graphene nanoribbon field-effect transistors from unzipped multi-wall carbon nanotubes. Electrical transport measurements show that current annealing effectively removes the impurities on the suspended graphene nanoribbons, uncovering the intrinsic ambipolar transfer characteristic of graphene. Further increasing the annealing current creates a narrow constriction in the ribbon, leading to the formation of a large bandgap and subsequent high on/off ratio (which can exceed 10(4)). Such fabricated devices are thermally and mechanically stable: repeated thermal cycling has little effect on their electrical properties. This work shows for the first time that ambipolar field-effect characteristics and high on/off ratios at room temperature can be achieved in relatively wide graphene nanoribbons (15-50 nm) by controlled current annealing.
我们已经从解卷的多壁碳纳米管中制造出悬浮的少层(1-3 层)石墨烯纳米带场效应晶体管。 电输运测量表明,电流退火可以有效地去除悬浮石墨烯纳米带表面的杂质,揭示出石墨烯的本征双极性输运特性。 进一步增加退火电流会在纳米带中形成一个狭窄的瓶颈,导致带隙变宽,随后开关比(超过 10^4)增大。 所制造的器件具有热和机械稳定性:反复的热循环对其电性能几乎没有影响。 这项工作首次表明,通过控制电流退火,可以在相对较宽的石墨烯纳米带(15-50nm)中实现室温下的双极性场效应特性和高开关比。