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Electron fractionalization in two-dimensional graphenelike structures

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arxiv cond-mat/0609740 v3 pith:NYCKNHS2 submitted 2006-09-28 cond-mat.mes-hall hep-th

Electron fractionalization in two-dimensional graphenelike structures

classification cond-mat.mes-hall hep-th
keywords fractionalizationsymmetrysystemstime-reversaltwo-dimensionalchargeddiracelectron
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Electron fractionalization is intimately related to topology. In one-dimensional systems, fractionally charged states exist at domain walls between degenerate vacua. In two-dimensional systems, fractionalization exists in quantum Hall fluids, where time-reversal symmetry is broken by a large external magnetic field. Recently, there has been a tremendous effort in the search for examples of fractionalization in two-dimensional systems with time-reversal symmetry. In this letter, we show that fractionally charged topological excitations exist on graphenelike structures, where quasiparticles are described by two flavors of Dirac fermions and time-reversal symmetry is respected. The topological zero-modes are mathematically similar to fractional vortices in p-wave superconductors. They correspond to a twist in the phase in the mass of the Dirac fermions, akin to cosmic strings in particle physics.

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