2017
DOI: 10.1038/nphys4110
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Tunnelling spectroscopy of Andreev states in graphene

Abstract: A normal conductor placed in good contact with a superconductor can inherit its remarkable electronic properties 1,2 . This proximity e ect microscopically originates from the formation in the conductor of entangled electron-hole states, called Andreev states [3][4][5][6][7][8] . Spectroscopic studies of Andreev states have been performed in just a handful of systems 9-13 . The unique geometry, electronic structure and high mobility of graphene 14,15 make it a novel platform for studying Andreev physics in two… Show more

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Cited by 103 publications
(111 citation statements)
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“…The results presented here for the LDOS actually resemble those reported in Ref. [41] for a S-graphene-S junction, especially for high gate voltages when the graphene Fermi energy is away from the Dirac point. The main differences are: (i) the experimental results typically show a soft gap at low energies, contrary to the hard gap that we obtain, and (ii) the modulation of the LDOS in our simulations decays with the magnetic flux more rapidly than in the experiments.…”
Section: Discussionsupporting
confidence: 87%
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“…The results presented here for the LDOS actually resemble those reported in Ref. [41] for a S-graphene-S junction, especially for high gate voltages when the graphene Fermi energy is away from the Dirac point. The main differences are: (i) the experimental results typically show a soft gap at low energies, contrary to the hard gap that we obtain, and (ii) the modulation of the LDOS in our simulations decays with the magnetic flux more rapidly than in the experiments.…”
Section: Discussionsupporting
confidence: 87%
“…IV we present a discussion of the magnetic-field modulation of the LDOS in close connection to the work of Ref. [41] and present an analytical relation between LDOS and the supercurrent in fully transparent junctions. Finally, Sec.…”
Section: Introductionmentioning
confidence: 70%
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“…3c show a well-defined staircase pattern. Similar patterns have been reported previously in twodimensional electron systems, 7 and in STS studies of graphene 8,9 , though not at = 18 . These staircase patterns arise from highly compressible LLs for which the Fermi level is pinned at a constant energy as they are filled with charge.…”
supporting
confidence: 89%