English

Edge state transport through disordered graphene nanoribbons in the quantum Hall regime

Mesoscale and Nanoscale Physics 2012-09-03 v1

Abstract

The presence of strong disorder in graphene nanoribbons yields low-mobility diffusive transport at high charge densities, whereas a transport gap occurs at low densities. Here, we investigate the longitudinal and transverse magnetoresistance of a narrow (60 nm) nanoribbon in a six-terminal Hall bar geometry. At B= 11 T, quantum Hall plateaux appear at σxy=±2e2/h\sigma_{xy}=\pm2e^2/h, ±6e2/h\pm6e^2/h and ±10e2/h\pm10e^2/h, for which the Landau level spacing is larger than the Landau level broadening. Interestingly, the transport gap does not disappear in the quantum Hall regime, when the zero-energy Landau level is present at the charge neutrality point, implying that it cannot originate from a lateral confinement gap. At high charge densities, the longitudinal and Hall resistance exhibit reproducible fluctuations, which are most pronounced at the transition regions between Hall plateaux. Bias-dependent measurements strongly indicate that these fluctuations can be attributed to phase coherent scattering in the disordered ribbon.

Keywords

Cite

@article{arxiv.1208.6429,
  title  = {Edge state transport through disordered graphene nanoribbons in the quantum Hall regime},
  author = {Fabian Duerr and Jeroen B. Oostinga and Charles Gould and Laurens W. Molenkamp},
  journal= {arXiv preprint arXiv:1208.6429},
  year   = {2012}
}

Comments

experimental paper; 4 pages, 4 figures