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P-wave triggered superconductivity in single-layer graphene on an electron-doped oxide superconductor.


ABSTRACT: Electron pairing in the vast majority of superconductors follows the Bardeen-Cooper-Schrieffer theory of superconductivity, which describes the condensation of electrons into pairs with antiparallel spins in a singlet state with an s-wave symmetry. Unconventional superconductivity was predicted in single-layer graphene (SLG), with the electrons pairing with a p-wave or chiral d-wave symmetry, depending on the position of the Fermi energy with respect to the Dirac point. By placing SLG on an electron-doped (non-chiral) d-wave superconductor and performing local scanning tunnelling microscopy and spectroscopy, here we show evidence for a p-wave triggered superconducting density of states in SLG. The realization of unconventional superconductivity in SLG offers an exciting new route for the development of p-wave superconductivity using two-dimensional materials with transition temperatures above 4.2?K.

SUBMITTER: Di Bernardo A 

PROVIDER: S-EPMC5253682 | biostudies-literature | 2017 Jan

REPOSITORIES: biostudies-literature

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p-wave triggered superconductivity in single-layer graphene on an electron-doped oxide superconductor.

Di Bernardo A A   Millo O O   Barbone M M   Alpern H H   Kalcheim Y Y   Sassi U U   Ott A K AK   De Fazio D D   Yoon D D   Amado M M   Ferrari A C AC   Linder J J   Robinson J W A JW  

Nature communications 20170119


Electron pairing in the vast majority of superconductors follows the Bardeen-Cooper-Schrieffer theory of superconductivity, which describes the condensation of electrons into pairs with antiparallel spins in a singlet state with an s-wave symmetry. Unconventional superconductivity was predicted in single-layer graphene (SLG), with the electrons pairing with a p-wave or chiral d-wave symmetry, depending on the position of the Fermi energy with respect to the Dirac point. By placing SLG on an elec  ...[more]

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