Encapsulation and Electronic Control of Epitaxial Graphene by Photosensitive Polymers and UV light
arXiv:1101.6014 · doi:10.1002/adma.201003993
Abstract
Electronic devices using epitaxial graphene on Silicon Carbide require encapsulation to avoid uncontrolled doping by impurities deposited in ambient conditions. Additionally, interaction of the graphene monolayer with the substrate causes relatively high level of electron doping in this material, which is rather difficult to change by electrostatic gating alone. Here we describe one solution to these problems, allowing both encapsulation and control of the carrier concentration in a wide range. We describe a novel heterostructure based on epitaxial graphene grown on silicon carbide combined with two polymers: a neutral spacer and a photoactive layer that provides potent electron acceptors under UV light exposure. Unexposed, the same double layer of polymers works well as capping material, improving the temporal stability and uniformity of the doping level of the sample. By UV exposure of this heterostructure we controlled electrical parameters of graphene in a non-invasive, non-volatile, and reversible way, changing the carrier concentration by a factor of 50. The electronic properties of the exposed SiC/ graphene/polymer heterostructures remained stable over many days at room temperature, but heating the polymers above the glass transition reversed the effect of light. The newly developed photochemical gating has already helped us to improve the robustness (large range of quantizing magnetic field, substantially higher opera- tion temperature and significantly enhanced signal-to-noise ratio due to significantly increased breakdown current) of a graphene resistance standard to such a level that it starts to compete favorably with mature semiconductor heterostructure standards. [2,3]
Published online in "Advanced Materials", 7 Jan 2011. Category cond-mat.mes-hall
References in corpus (5)
- The electronic properties of graphene
- Gate-induced insulating state in bilayer graphene devices
- Asymmetry gap in the electronic band structure of bilayer graphene
- Charge transfer between epitaxial graphene and silicon carbide
- Encapsulation and Electronic Control of Epitaxial Graphene by Photosensitive Polymers and UV light
Cited by in corpus (23)
- Encapsulation and Electronic Control of Epitaxial Graphene by Photosensitive Polymers and UV light
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- Precision comparison of the quantum Hall effect in graphene and gallium arsenide
- Quantum Hall phase in graphene engineered by interfacial charge coupling
- Graphene p-n junction Arrays as Quantum-Hall Resistance Standards
- Epitaxial graphene on SiC: Modification of structural and electron transport properties by substrate pretreatment
- Observation of the quantum Hall effect in epitaxial graphene on SiC(0001) with oxygen adsorption
- Quantum Hall Effect and Quantum Point Contact in Bilayer-Patched Epitaxial Graphene
- Terahertz electric field driven electric currents and ratchet effects in graphene
- Towards a Graphene-Based Quantum Impedance Standard
- Impact of graphene quantum capacitance on transport spectroscopy
- Hot carrier relaxation of Dirac fermions in bilayer epitaxial graphene
- Nonequilibrium mesoscopic conductance fluctuations as the origin of 1/f noise in epitaxial graphene
- Magnetic-field driven ambipolar quantum Hall effect in epitaxial graphene close to the charge neutrality point
- Strongly temperature dependent resistance of meander-patterned graphene
- Graphene surpasses GaAs/AlGaAs for the application of the quantum Hall effect in metrology
- Optimization of epitaxial graphene growth for quantum metrology
- Robust quantum Hall resistance standard from uniform wafer-scale epitaxial graphene on SiC
- The effect of bilayer domains on electronic transport properties of epitaxial graphene on SiC
- Observation of Coulomb blockade in nanostructured epitaxial bilayer graphene on SiC
- Pronounced scale-dependent charge carrier density in graphene quantum Hall devices
- Fabrication and Study of Large Area QHE Devices Based on Epitaxial Graphene