Triple-Mode Single-Transistor Graphene Amplifier and Its Applications
Top Cited Papers
- 12 October 2010
- journal article
- research article
- Published by American Chemical Society (ACS) in ACS Nano
- Vol. 4 (10), 5532-5538
- https://doi.org/10.1021/nn1021583
Abstract
We propose and experimentally demonstrate a triple-mode single-transistor graphene amplifier utilizing a three-terminal back-gated single-layer graphene transistor. The ambipolar nature of electronic transport in graphene transistors leads to increased amplifier functionality as compared to amplifiers built with unipolar semiconductor devices. The ambipolar graphene transistors can be configured as n-type, p-type, or hybrid-type by changing the gate bias. As a result, the single-transistor graphene amplifier can operate in the common-source, common-drain, or frequency multiplication mode, respectively. This in-field controllability of the single-transistor graphene amplifier can be used to realize the modulation necessary for phase shift keying and frequency shift keying, which are widely used in wireless applications. It also offers new opportunities for designing analog circuits with simpler structure and higher integration densities for communications applications.Keywords
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This publication has 24 references indexed in Scilit:
- Dimensional crossover of thermal transport in few-layer grapheneNature Materials, 2010
- 100-GHz Transistors from Wafer-Scale Epitaxial GrapheneScience, 2010
- Operation of Graphene Transistors at Gigahertz FrequenciesNano Letters, 2008
- Current saturation in zero-bandgap, top-gated graphene field-effect transistorsNature Nanotechnology, 2008
- Chemically Derived, Ultrasmooth Graphene Nanoribbon SemiconductorsScience, 2008
- Strong Suppression of Electrical Noise in Bilayer Graphene NanodevicesNano Letters, 2008
- Superior Thermal Conductivity of Single-Layer GrapheneNano Letters, 2008
- Carbon-based electronicsNature Nanotechnology, 2007
- The rise of grapheneNature Materials, 2007
- Electric Field Effect in Atomically Thin Carbon FilmsScience, 2004