| Literature DB >> 28166405 |
Damien Cabosart1, Alexandre Felten2, Nicolas Reckinger2, Andra Iordanescu1, Sébastien Toussaint1, Sébastien Faniel3, Benoît Hackens1.
Abstract
When coherent charge carriers cross micron-scale cavities, their dynamics can be governed by a few resonant states, also called "quantum scars", determined by the cavity geometry. Quantum scars can be described using theoretical tools but have also been directly imaged in the case of high-quality semiconductor cavities as well as in disordered graphene devices, thanks to scanning gate microscopy (SGM). Here, we discuss spatially resolved SGM images of low-temperature charge transport through a mesoscopic ring fabricated from high-quality monolayer graphene lying on top of hexagonal boron nitride. SGM images are decorated with a pattern of radial scars in the ring area, which is found to evolve smoothly and reappear when varying the charge-carrier energy. The energies separating recurrent patterns are found to be directly related to geometric dimensions of the ring. Moreover, a recurrence is also observed in simulations of the local density of states of a model graphene quantum ring. The observed recurrences are discussed in the light of recent predictions of relativistic quantum scars in mesoscopic graphene cavities.Entities:
Keywords: Graphene; coherent transport; mesoscopic transport; quantum scars; relativistic Dirac particles; scanning gate microscopy
Year: 2017 PMID: 28166405 DOI: 10.1021/acs.nanolett.6b03725
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189