Kondo effect due to a hydrogen impurity in graphene: A multichannel Kondo problem with diverging hybridization
ORAL
Abstract
We consider the Kondo effect arising from a hydrogen impurity in graphene. Approximating the C-H covalent bond as infinitely strong and the Hubbard interaction to be present only on the three nearest neighbors of hydrogen impurity, we obtain a Kondo model with three Z3-symmetric impurity spins and three conduction channels, two of which support a diverging local density of states ∝1/[|ω| ln2(Λ/ω)] near the Dirac point ω→0. When the particle-hole (p-h) symmetry breaking at the impurity is not too strong, numerical renormalization group shows that the ground state is either a p-h symmetric spin-1/2 doublet with ferromagnetic impurity spin correlations, or a p-h asymmetric spin singlet with antiferromagnetic impurity spin correlations. This behavior is inherited by the Anderson model containing the hydrogen impurity and all four carbon atoms in its vicinity.
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Presenters
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Zheng Shi
Dahlem Center for Complex Quantum Systems and Physics Department, Freie Univ Berlin
Authors
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Zheng Shi
Dahlem Center for Complex Quantum Systems and Physics Department, Freie Univ Berlin
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Emilian Nica
Department of Physics, Arizona State Univ, Arizona State University, Department of Physics, Arizona State University, Arizona State Univ, Arizona State Unviversity
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Ian Affleck
Physics and Astronomy, University of British Columbia, Department of Physics and Astronomy and Stewart Blusson Quantum Matter Institute, University of British Columbia, Physics, University of British Columbia, University of British Columbia