arXiv · 2012.09977
Topological valley currents via ballistic edge modes in graphene superlattices near the primary Dirac point
Abstract
Graphene on hexagonal boron nitride (hBN) can exhibit a topological phase via mutual crystallographic alignment. Recent measurements of nonlocal resistance ($R_{nl}$) near the secondary Dirac point (SDP) in ballistic graphene/hBN superlattices have been interpreted as arising due to the quantum valley Hall state. We report hBN/graphene/hBN superlattices in which $R_{nl}$ at SDP is negligible, but below 60 K approaches the value of $h/2e^{2}$ in zero magnetic field at the primary Dirac point with a characteristic decay length of 2 ${\mu}$m. Furthermore, nonlocal transport transmission probabilities based on the Landauer-B\"uttiker formalism show evidence for spin-degenerate ballistic valley-helical edge modes, which are key for the development of valleytronics
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Yang Li, Mario Amado, Timo Hyart, Grzegorz P. Mazur, Jason W. A. Robinson. 2020-12-17. Topological valley currents via ballistic edge modes in graphene superlattices near the primary Dirac point. https://doi.org/10.1038/s42005-020-00495-y
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