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Please use this identifier to cite or link to this item: https://elib.bsu.by/handle/123456789/294894
Title: Topologically Tuned Obliquity of Klein-Tunnelling Charged Currents Through Graphene Electrostatically-Confined p − n Junctions
Authors: Grushevskaya, H.
Krylov, G.
Keywords: ЭБ БГУ::ЕСТЕСТВЕННЫЕ И ТОЧНЫЕ НАУКИ::Физика
Issue Date: 2022
Publisher: Minsk : Education and Upbringing
Citation: Nonlinear Phenomena in Complex Systems. - 2022. - Vol. 25. - № 1. - P. 21-40
Abstract: Problem of control over Klein-tunnelling states from electrostatically-confined graphene p − n junctions has been discussed. The lack of quasi-bound states, being the states with a finite life time, in a pseudo-Dirac-fermion model for the graphene quantum dot (GQD) is theoretically predicted as inapplicability of the so-called “resonance condition” leading to an inconsistent linear system corresponding to matching conditions. Within a pseudo-Dirac-Weyl fermion model GQD, the graphene charge carriers are topologically nontrivial and can be confined by a staircase-type potential due to competition between Zak curvature and centrifugal-force actions. The predicted topological effects elucidate experimentally observed resonances created by electron beam and laser pulse in crystalline arrays of single-walled carbon nanotubes as the Klein-tunnelling resonant states in the p − n graphene junctions. We present a robust approach to fabricate stable graphene p−n junctions by fine-tuning the topological effects.
URI: https://elib.bsu.by/handle/123456789/294894
ISSN: 1561-4085
DOI: 10.33581/1561-4085-2022-25-1-21-40
Licence: info:eu-repo/semantics/openAccess
Appears in Collections:2022. Volume 25. Number 1

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