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Electronic Transport Properties of Individual Chemically Reduced Graphene Oxide Sheets

Nano Letters · 2007 · Vol. 7(11) · pp. 3499–3503
Cristina Gómez‐NavarroR. Thomas WeitzAlexander M. BittnerMatteo ScolariAlf MewsMarko BurghardKlaus Kern

Abstract

Individual graphene oxide sheets subjected to chemical reduction were electrically characterized as a function of temperature and external electric fields. The fully reduced monolayers exhibited conductivities ranging between 0.05 and 2 S/cm and field effect mobilities of 2-200 cm2/Vs at room temperature. Temperature-dependent electrical measurements and Raman spectroscopic investigations suggest that charge transport occurs via variable range hopping between intact graphene islands with sizes on the order of several nanometers. Furthermore, the comparative study of multilayered sheets revealed that the conductivity of the undermost layer is reduced by a factor of more than 2 as a consequence of the interaction with the Si/SiO2 substrate.

Graphene research and applicationsAdvancements in Battery MaterialsAdvanced Memory and Neural ComputingGrapheneOxideMaterials scienceNanotechnologyChemical engineeringChemical physicsChemistry

MeSH terms

CrystallizationElectric ConductivityElectrochemistryElectronicsGraphiteOxidesSilicon DioxideSpectrum Analysis, RamanSurface PropertiesTemperatureMicroscopy, Atomic ForceNanotechnologyNanostructuresNanoparticles

Funding

  • Alexander von Humboldt-Stiftung
  • École Polytechnique Fédérale de Lausanne
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