Dirac fermion heating, current scaling, and direct insulator-quantum hall transition in multilayer epitaxial graphene

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Abstract

We have performed magnetotransport measurements on multilayer epitaxial graphene. By increasing the driving current I through our graphene devices while keeping the bath temperature fixed, we are able to study Dirac fermion heating and current scaling in such devices. Using zero-field resistivity as a self thermometer, we are able to determine the effective Dirac fermion temperature (TDF) at various driving currents. At zero field, it is found that TDF ∝ /≈1/2. Such results are consistent with electron heating in conventional two-dimensional systems in the plateau-plateau transition regime. With increasing magnetic field B, we observe an I-independent point in the measured longitudinal resistivity ρxx which is equivalent to the direct insulator-quantum Hall (I-QH) transition characterized by a temperature-independent point in ρxx. Together with recent experimental evidence for direct I-QH transition, our new data suggest that such a transition is a universal effect in graphene, albeit further studies are required to obtain a thorough understanding of such an effect. © 2013 Liu et al.; licensee Springer.

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Liu, F. H., Hsu, C. S., Chuang, C., Woo, T. P., Huang, L. I., Lo, S. T., … Liang, C. T. (2013). Dirac fermion heating, current scaling, and direct insulator-quantum hall transition in multilayer epitaxial graphene. Nanoscale Research Letters, 8(1), 1–6. https://doi.org/10.1186/1556-276X-8-360

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