Quantum behavior of graphene transistors near the scaling limit
arXiv:1205.2426 · doi:10.1021/nl204088b
Abstract
The superior intrinsic properties of graphene have been a key research focus for the past few years. However, external components, such as metallic contacts, serve not only as essential probing elements, but also give rise to an effective electron cavity, which can form the basis for new quantum devices. In previous studies, quantum interference effects were demonstrated in graphene heterojunctions formed by a top gate. Here phase coherent transport behavior is demonstrated in a simple two terminal graphene structure with clearly-resolved Fabry-Perot oscillations in sub-100 nm devices. By aggressively scaling the channel length down to 50 nm, we study the evolution of the graphene transistor from the channel-dominated diffusive regime to the contact-dominated ballistic regime. Key issues such as the current asymmetry, the question of Fermi level pinning by the contacts, the graphene screening determining the heterojunction barrier width, the scaling of minimum conductivity and of the on/off current ratio, are investigated.
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- Field effect doping of graphene in metal|dielectric|graphene heterostructures: a model based upon first-principles calculations
- Spin filter and spin valve in ferromagnetic graphene
- Evidence of electronic cloaking from chiral electron transport in bilayer graphene nanostructures
- Direct observation of ballistic Andreev reflection
- Tailoring 10 nm Scale Suspended Graphene Junctions and Quantum Dots