Sub-100 nm Channel Length Graphene Transistors
- 3 September 2010
- journal article
- letter
- Published by American Chemical Society (ACS) in Nano Letters
- Vol. 10 (10) , 3952-3956
- https://doi.org/10.1021/nl101724k
Abstract
Here we report high-performance sub-100 nm channel length graphene transistors fabricated using a self-aligned approach. The graphene transistors are fabricated using a highly doped GaN nanowire as the local gate with the source and drain electrodes defined through a self-aligned process and the channel length defined by the nanowire size. This fabrication approach allows the preservation of the high carrier mobility in graphene and ensures nearly perfect alignment between source, drain, and gate electrodes. It therefore affords transistor performance not previously possible. Graphene transistors with 45−100 nm channel lengths have been fabricated with the scaled transconductance exceeding 2 mS/μm, comparable to the best performed high electron mobility transistors with similar channel lengths. Analysis of and the device characteristics gives a transit time of 120−220 fs and the projected intrinsic cutoff frequency (fT) reaching 700−1400 GHz. This study demonstrates the exciting potential of graphene based electronics in terahertz electronics.Keywords
This publication has 33 references indexed in Scilit:
- Graphene transistorsNature Nanotechnology, 2010
- High‐Performance Top‐Gated Graphene‐Nanoribbon Transistors Using Zirconium Oxide Nanowires as High‐Dielectric‐Constant Gate DielectricsAdvanced Materials, 2010
- Top-Gated Graphene Nanoribbon Transistors with Ultrathin High-k DielectricsNano Letters, 2010
- High- κ oxide nanoribbons as gate dielectrics for high mobility top-gated graphene transistorsProceedings of the National Academy of Sciences, 2010
- Dual-Gate Graphene FETs With $f_{T}$ of 50 GHzIEEE Electron Device Letters, 2009
- Current saturation in zero-bandgap, top-gated graphene field-effect transistorsNature Nanotechnology, 2008
- Electronic transport and layer engineering in multilayer graphene structuresApplied Physics Letters, 2008
- RF transistors: Recent developments and roadmap toward terahertz applicationsSolid-State Electronics, 2007
- Electronic Confinement and Coherence in Patterned Epitaxial GrapheneScience, 2006
- AC performance of nanoelectronics: towards a ballistic THz nanotube transistorSolid-State Electronics, 2004