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Making devices with graphene necessarily involves making contacts with metals. We use density functional theory to study how graphene is doped by adsorption on metal substrates and find that weak bonding on Al, Ag, Cu, Au, and Pt, while preserving its unique electronic structure, can still shift the Fermi level with respect to the conical point by approximately 0.5 eV. At equilibrium separations, the crossover from p-type to n-type doping occurs for a metal work function of approximately 5.4 eV, a value much larger than the graphene work function of 4.5 eV. The numerical results for the Fermi level shift in graphene are described very well by a simple analytical model which characterizes the metal solely in terms of its work function, greatly extending their applicability.
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Giovannetti et al. (Thu,) studied this question.
synapsesocial.com/papers/69d8ffba4332c00a00ae2a32 — DOI: https://doi.org/10.1103/physrevlett.101.026803
Gianluca Giovannetti
Sapienza University of Rome
Petr A. Khomyakov
Belarusian State University
Geert Brocks
Eindhoven University of Technology
Physical Review Letters
Radboud University Nijmegen
Leiden University
Radboud University Medical Center
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