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Quantization of spin Hall conductivity in two-dimensional topological insulators versus symmetry and spin-orbit interaction

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Autor(es):
Matusalem, Filipe ; Marques, Marcelo ; Teles, Lara K. ; Matthes, Lars ; Furthmueller, Juergen ; Bechstedt, Friedhelm
Número total de Autores: 6
Tipo de documento: Artigo Científico
Fonte: PHYSICAL REVIEW B; v. 100, n. 24, p. 10-pg., 2019-12-24.
Resumo

The third-rank tensor of the static spin Hall conductivity is investigated for two-dimensional (2D) topological insulators by electronic structure calculations. For highly symmetric hexagonal systems its numerical values are close to the conductance quantum e(2)/h, independent of the gap size. 2D crystals with a square Bravais lattice present similar effects, while rectangular translational symmetry yields conductivity values much below e(2)/h, showing that a quantum spin Hall phase is not generally characterized by a quantized spin Hall conductivity. Vertical electric fields applied to hexagonal 2D crystals strongly reduce the conductivity, despite the conservation of the quantum spin Hall state up to a critical field strength. Weak symmetry-conserving biaxial but also symmetry-lowering uniaxial strain has a minor influence as long as inverted gaps dictate the topological character. The results are discussed in terms of the atomic geometry and the Rashba contribution to the spin-orbit interaction (SOI) using a tight-binding approximation. Translational and point-group symmetry as well as SOI rule the deviation from the quantization of the spin Hall conductance. (AU)

Processo FAPESP: 14/13907-7 - Propriedades físicas de materiais bidimensionais
Beneficiário:Lara Kühl Teles
Modalidade de apoio: Auxílio à Pesquisa - Pesquisador Visitante - Internacional