Superconducting graphene sheets in CaC6 enabled by phonon-mediated interband interactions

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作者
S.-L. Yang
J. A. Sobota
C. A. Howard
C. J. Pickard
M. Hashimoto
D. H. Lu
S.-K. Mo
P. S. Kirchmann
Z.-X. Shen
机构
[1] Stanford Institute for Materials and Energy Sciences,Departments of Physics and Applied Physics
[2] SLAC National Accelerator Laboratory,London Centre for Nanotechnology and Department of Physics and Astronomy
[3] Geballe Laboratory for Advanced Materials,undefined
[4] Stanford University,undefined
[5] University College London,undefined
[6] Stanford Synchrotron Radiation Lightsource,undefined
[7] SLAC National Accelerator Laboratory,undefined
[8] 2575 Sand Hill Road,undefined
[9] Advanced Light Source,undefined
[10] Lawrence Berkeley National Laboratory,undefined
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摘要
There is a great deal of fundamental and practical interest in the possibility of inducing superconductivity in a monolayer of graphene. But while bulk graphite can be made to superconduct when certain metal atoms are intercalated between its graphene sheets, the same has not been achieved in a single layer. Moreover, there is a considerable debate about the precise mechanism of superconductivity in intercalated graphite. Here we report angle-resolved photoelectron spectroscopy measurements of the superconducting graphite intercalation compound CaC6 that distinctly resolve both its intercalant-derived interlayer band and its graphene-derived π* band. Our results indicate the opening of a superconducting gap in the π* band and reveal a substantial contribution to the total electron–phonon-coupling strength from the π*-interlayer interband interaction. Combined with theoretical predictions, these results provide a complete account for the superconducting mechanism in graphite intercalation compounds and lend support to the idea of realizing superconducting graphene by creating an adatom superlattice.
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