Applied Physics Letters · 2013 · 24 citations · 13 references
Graphene NanomeshesElectrical EngineeringElectronic DevicesEngineeringGraphene Quantum DotGraphene-based Nano-antennasNanoelectronicsCarrier MobilityGraphene FiberApplied PhysicsGrapheneGraphene NanoribbonHigh Carrier MobilityChannel Suspension MethodGraphene Channel
A channel suspension method to fabricate high performance graphene field effect transistors (GFET) is presented in this paper. The balance is reached between gate efficiency and carrier mobility. A GFET with 15 μm × 15 μm gate dimension achieves a high normalized transconductance. Peak intrinsic carrier mobility is extracted to be 44 600 cm2v−1s−1. Suspension of the graphene channel is confirmed by AFM, SEM, and gate capacitance measurements. Unlike traditional substrate supported GFET, the proposed suspended-channel structure suppresses the influence of extrinsic scatterings and, meanwhile, maintains a certain gate controllability.
13
Ultrahigh electron mobility in suspended graphene
Kirill I. Bolotin, Kenneth Sikes, Zhewei Jiang et al. · Solid State Communications · 2008 · 7.9K citations · Full text
Intrinsic and extrinsic performance limits of graphene devices on SiO2
Jianhao Chen, Chaun Jang, Shudong Xiao et al. · Nature Nanotechnology · 2008 · 3.1K citations · Full text
Materials Science, Graphene Nanomeshes, Electrical Engineering +8