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A topological insulator and helical zero mode in silicene under an inhomogeneous electric field

New Journal of Physics · 2012 · Vol. 14(3) · pp. 033003–033003
Motohiko Ezawa

Abstract

Silicene is a monolayer of silicon atoms forming a two-dimensional honeycomb lattice, which shares almost every remarkable property with graphene. The low energy structure of silicene is described by Dirac electrons with relatively large spin-orbit interactions due to its buckled structure. The key observation is that the band structure is controllable by applying the electric field to a silicene sheet. In particular, the gap closes at a certain critical electric field. Examining the band structure of a silicene nanoribbon, we demonstrate that a topological phase transition occurs from a topological insulator to a band insulator with the increase of the electric field. We also show that it is possible to generate helical zero modes anywhere in a silicene sheet by adjusting the electric field locally to this critical value. The region may act as a quantum wire or a quantum dot surrounded by topological and/or band insulators. We explicitly construct the wave functions for some simple geometries based on the low-energy effective Dirac theory. These results are applicable also to germanene, that is a two-dimensional honeycomb structure of germanium.

Topological Materials and PhenomenaGraphene research and applicationsCarbon Nanotubes in CompositesSiliceneElectric fieldTopological insulatorTopological orderTopology (electrical circuits)ElectronInsulator (electricity)MonolayerBand gap
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671
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References
Topological insulators and superconductors
Reviews of Modern Physics · 2011 · 14,069 citations
Quantum Spin Hall Effect in Graphene
Physical Review Letters · 2005 · 7,975 citations
Epitaxial growth of a silicene sheet
Applied Physics Letters · 2010 · 1,364 citations
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Journal of the Physical Society of Japan · 1996 · 2,772 citations
Spin-orbit gap of graphene: First-principles calculations
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Electronic structure of silicon-based nanostructures
Physical Review B · 2007 · 1,013 citations
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