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Quantum Spin Hall Effect in Graphene

Physical Review Letters · 2005 · Vol. 95(22) · pp. 226801–226801
C. L. KaneE. J. Melé

Abstract

We study the effects of spin orbit interactions on the low energy electronic structure of a single plane of graphene. We find that in an experimentally accessible low temperature regime the symmetry allowed spin orbit potential converts graphene from an ideal two-dimensional semimetallic state to a quantum spin Hall insulator. This novel electronic state of matter is gapped in the bulk and supports the transport of spin and charge in gapless edge states that propagate at the sample boundaries. The edge states are nonchiral, but they are insensitive to disorder because their directionality is correlated with spin. The spin and charge conductances in these edge states are calculated and the effects of temperature, chemical potential, Rashba coupling, disorder, and symmetry breaking fields are discussed.

Graphene research and applicationsQuantum and electron transport phenomenaTopological Materials and PhenomenaGrapheneCondensed matter physicsQuantum Hall effectSpin (aerodynamics)PhysicsQuantum spin Hall effectSpin Hall effectQuantum mechanicsElectronSpin polarization
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References
Quantized Hall conductivity in two dimensions
Physical review. B, Condensed matter · 1981 · 2,443 citations
Quantized Hall Conductance in a Two-Dimensional Periodic Potential
Physical Review Letters · 1982 · 6,711 citations
Peculiar Localized State at Zigzag Graphite Edge
Journal of the Physical Society of Japan · 1996 · 2,772 citations
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