Circular polarization resolved magneto-infrared spectroscopy of multilayer epitaxial graphene reveals a four-fold splitting of the monolayer n=0 Landau level transition, with extracted valley and Zeeman g-factors of 6.7 and 4.8.
Detecting degeneracy and subtle broken-symmetry states of graphene at nanoscale
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abstract
Measuring degeneracy and broken-symmetry states of a system at nanoscale requires extremely high energy and spatial resolution, which has so far eluded direct observation. Here, we realize measurement of the degeneracy and subtle broken-symmetry states of graphene at nanoscale for the first time. By using edge-free graphene quantum dots, we are able to measure valley splitting and valley-contrasting spin splitting of graphene at the single-electron level. Our experiments detect large valley splitting around atomic defects of graphene due to the coexistence of sublattice symmetry breaking and time reversal symmetry breaking. Large valley-contrasting spin splitting induced by enhanced spin-orbit coupling around the defects is also observed. These results reveal unexplored exotic electronic states in graphene at nanoscale induced by the atomic defects.
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cond-mat.mes-hall 1years
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Valley and Zeeman Splittings in Multilayer Epitaxial Graphene Revealed by Circular Polarization Resolved Magneto-infrared Spectroscopy
Circular polarization resolved magneto-infrared spectroscopy of multilayer epitaxial graphene reveals a four-fold splitting of the monolayer n=0 Landau level transition, with extracted valley and Zeeman g-factors of 6.7 and 4.8.