| Literature DB >> 28211276 |
Alexander Georgi1, Peter Nemes-Incze1, Ramon Carrillo-Bastos2,3, Daiara Faria4,5, Silvia Viola Kusminskiy6,7, Dawei Zhai3, Martin Schneider6, Dinesh Subramaniam1, Torge Mashoff8, Nils M Freitag1, Marcus Liebmann1, Marco Pratzer1, Ludger Wirtz9, Colin R Woods10, Roman V Gorbachev10, Yang Cao10, Kostya S Novoselov10, Nancy Sandler3, Markus Morgenstern1.
Abstract
One of the intriguing characteristics of honeycomb lattices is the appearance of a pseudomagnetic field as a result of mechanical deformation. In the case of graphene, the Landau quantization resulting from this pseudomagnetic field has been measured using scanning tunneling microscopy. Here we show that a signature of the pseudomagnetic field is a local sublattice symmetry breaking observable as a redistribution of the local density of states. This can be interpreted as a polarization of graphene's pseudospin due to a strain induced pseudomagnetic field, in analogy to the alignment of a real spin in a magnetic field. We reveal this sublattice symmetry breaking by tunably straining graphene using the tip of a scanning tunneling microscope. The tip locally lifts the graphene membrane from a SiO2 support, as visible by an increased slope of the I(z) curves. The amount of lifting is consistent with molecular dynamics calculations, which reveal a deformed graphene area under the tip in the shape of a Gaussian. The pseudomagnetic field induced by the deformation becomes visible as a sublattice symmetry breaking which scales with the lifting height of the strained deformation and therefore with the pseudomagnetic field strength. Its magnitude is quantitatively reproduced by analytic and tight-binding models, revealing fields of 1000 T. These results might be the starting point for an effective THz valley filter, as a basic element of valleytronics.Entities:
Keywords: Graphene; STM; pseudomagnetic field; pseudospin polarization; strain; valley filter
Year: 2017 PMID: 28211276 DOI: 10.1021/acs.nanolett.6b04870
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189