An implementation of spin–orbit coupling for band structure calculations with Gaussian basis sets: Two-dimensional topological crystals of Sb and Bi

We present an implementation of spin–orbit coupling (SOC) for density functional theory band structure calculations that makes use of Gaussian basis sets. It is based on the explicit evaluation of SOC matrix elements, both the radial and angular parts. For all-electron basis sets, where the full nod...

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Main Authors: Sahar Pakdel, Mahdi Pourfath, J. J. Palacios
Format: Article
Language:English
Published: Beilstein-Institut 2018-03-01
Series:Beilstein Journal of Nanotechnology
Subjects:
Online Access:https://doi.org/10.3762/bjnano.9.94
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spelling doaj-a17178619fe940569151e0e222ad7ec42020-11-24T22:24:07ZengBeilstein-InstitutBeilstein Journal of Nanotechnology2190-42862018-03-01911015102310.3762/bjnano.9.942190-4286-9-94An implementation of spin–orbit coupling for band structure calculations with Gaussian basis sets: Two-dimensional topological crystals of Sb and BiSahar Pakdel0Mahdi Pourfath1J. J. Palacios2School of Electrical and Computer Engineering, University College of Engineering, University of Tehran, Tehran 14395-515, IranSchool of Electrical and Computer Engineering, University College of Engineering, University of Tehran, Tehran 14395-515, IranDepartamento de Física de la Materia Condensada, Universidad Autónoma de Madrid, 28049 Madrid, SpainWe present an implementation of spin–orbit coupling (SOC) for density functional theory band structure calculations that makes use of Gaussian basis sets. It is based on the explicit evaluation of SOC matrix elements, both the radial and angular parts. For all-electron basis sets, where the full nodal structure is present in the basis elements, the results are in good agreement with well-established implementations such as VASP. For more practical pseudopotential basis sets, which lack nodal structure, an ad-hoc increase of the effective nuclear potential helps to capture all relevant band structure variations induced by SOC. In this work, the non-relativistic or scalar-relativistic Kohn–Sham Hamiltonian is obtained from the CRYSTAL code and the SOC term is added a posteriori. As an example, we apply this method to the Bi(111) monolayer, a paradigmatic 2D topological insulator, and to mono- and multilayer Sb(111) (also known as antimonene), the former being a trivial semiconductor and the latter a topological semimetal featuring topologically protected surface states.https://doi.org/10.3762/bjnano.9.94antimoneneelectronic structureSb few-layersspin–orbit coupling (SOC)topological material
collection DOAJ
language English
format Article
sources DOAJ
author Sahar Pakdel
Mahdi Pourfath
J. J. Palacios
spellingShingle Sahar Pakdel
Mahdi Pourfath
J. J. Palacios
An implementation of spin–orbit coupling for band structure calculations with Gaussian basis sets: Two-dimensional topological crystals of Sb and Bi
Beilstein Journal of Nanotechnology
antimonene
electronic structure
Sb few-layers
spin–orbit coupling (SOC)
topological material
author_facet Sahar Pakdel
Mahdi Pourfath
J. J. Palacios
author_sort Sahar Pakdel
title An implementation of spin–orbit coupling for band structure calculations with Gaussian basis sets: Two-dimensional topological crystals of Sb and Bi
title_short An implementation of spin–orbit coupling for band structure calculations with Gaussian basis sets: Two-dimensional topological crystals of Sb and Bi
title_full An implementation of spin–orbit coupling for band structure calculations with Gaussian basis sets: Two-dimensional topological crystals of Sb and Bi
title_fullStr An implementation of spin–orbit coupling for band structure calculations with Gaussian basis sets: Two-dimensional topological crystals of Sb and Bi
title_full_unstemmed An implementation of spin–orbit coupling for band structure calculations with Gaussian basis sets: Two-dimensional topological crystals of Sb and Bi
title_sort implementation of spin–orbit coupling for band structure calculations with gaussian basis sets: two-dimensional topological crystals of sb and bi
publisher Beilstein-Institut
series Beilstein Journal of Nanotechnology
issn 2190-4286
publishDate 2018-03-01
description We present an implementation of spin–orbit coupling (SOC) for density functional theory band structure calculations that makes use of Gaussian basis sets. It is based on the explicit evaluation of SOC matrix elements, both the radial and angular parts. For all-electron basis sets, where the full nodal structure is present in the basis elements, the results are in good agreement with well-established implementations such as VASP. For more practical pseudopotential basis sets, which lack nodal structure, an ad-hoc increase of the effective nuclear potential helps to capture all relevant band structure variations induced by SOC. In this work, the non-relativistic or scalar-relativistic Kohn–Sham Hamiltonian is obtained from the CRYSTAL code and the SOC term is added a posteriori. As an example, we apply this method to the Bi(111) monolayer, a paradigmatic 2D topological insulator, and to mono- and multilayer Sb(111) (also known as antimonene), the former being a trivial semiconductor and the latter a topological semimetal featuring topologically protected surface states.
topic antimonene
electronic structure
Sb few-layers
spin–orbit coupling (SOC)
topological material
url https://doi.org/10.3762/bjnano.9.94
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