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KITE: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures

We present KITE, a general purpose open-source tight-binding software for accurate real-space simulations of electronic structure and quantum transport properties of large-scale molecular and condensed systems with tens of billions of atomic orbitals (N ∼ 10(10)). KITE’s core is written in C++, with...

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Autores principales: João, Simão M., Anđelković, Miša, Covaci, Lucian, Rappoport, Tatiana G., Lopes, João M. V. P., Ferreira, Aires
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7062052/
https://www.ncbi.nlm.nih.gov/pubmed/32257336
http://dx.doi.org/10.1098/rsos.191809
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author João, Simão M.
Anđelković, Miša
Covaci, Lucian
Rappoport, Tatiana G.
Lopes, João M. V. P.
Ferreira, Aires
author_facet João, Simão M.
Anđelković, Miša
Covaci, Lucian
Rappoport, Tatiana G.
Lopes, João M. V. P.
Ferreira, Aires
author_sort João, Simão M.
collection PubMed
description We present KITE, a general purpose open-source tight-binding software for accurate real-space simulations of electronic structure and quantum transport properties of large-scale molecular and condensed systems with tens of billions of atomic orbitals (N ∼ 10(10)). KITE’s core is written in C++, with a versatile Python-based interface, and is fully optimized for shared memory multi-node CPU architectures, thus scalable, efficient and fast. At the core of KITE is a seamless spectral expansion of lattice Green’s functions, which enables large-scale calculations of generic target functions with uniform convergence and fine control over energy resolution. Several functionalities are demonstrated, ranging from simulations of local density of states and photo-emission spectroscopy of disordered materials to large-scale computations of optical conductivity tensors and real-space wave-packet propagation in the presence of magneto-static fields and spin–orbit coupling. On-the-fly calculations of real-space Green’s functions are carried out with an efficient domain decomposition technique, allowing KITE to achieve nearly ideal linear scaling in its multi-threading performance. Crystalline defects and disorder, including vacancies, adsorbates and charged impurity centres, can be easily set up with KITE’s intuitive interface, paving the way to user-friendly large-scale quantum simulations of equilibrium and non-equilibrium properties of molecules, disordered crystals and heterostructures subject to a variety of perturbations and external conditions.
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spelling pubmed-70620522020-03-31 KITE: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures João, Simão M. Anđelković, Miša Covaci, Lucian Rappoport, Tatiana G. Lopes, João M. V. P. Ferreira, Aires R Soc Open Sci Physics and Biophysics We present KITE, a general purpose open-source tight-binding software for accurate real-space simulations of electronic structure and quantum transport properties of large-scale molecular and condensed systems with tens of billions of atomic orbitals (N ∼ 10(10)). KITE’s core is written in C++, with a versatile Python-based interface, and is fully optimized for shared memory multi-node CPU architectures, thus scalable, efficient and fast. At the core of KITE is a seamless spectral expansion of lattice Green’s functions, which enables large-scale calculations of generic target functions with uniform convergence and fine control over energy resolution. Several functionalities are demonstrated, ranging from simulations of local density of states and photo-emission spectroscopy of disordered materials to large-scale computations of optical conductivity tensors and real-space wave-packet propagation in the presence of magneto-static fields and spin–orbit coupling. On-the-fly calculations of real-space Green’s functions are carried out with an efficient domain decomposition technique, allowing KITE to achieve nearly ideal linear scaling in its multi-threading performance. Crystalline defects and disorder, including vacancies, adsorbates and charged impurity centres, can be easily set up with KITE’s intuitive interface, paving the way to user-friendly large-scale quantum simulations of equilibrium and non-equilibrium properties of molecules, disordered crystals and heterostructures subject to a variety of perturbations and external conditions. The Royal Society 2020-02-26 /pmc/articles/PMC7062052/ /pubmed/32257336 http://dx.doi.org/10.1098/rsos.191809 Text en © 2020 The Authors. http://creativecommons.org/licenses/by/4.0/ Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Physics and Biophysics
João, Simão M.
Anđelković, Miša
Covaci, Lucian
Rappoport, Tatiana G.
Lopes, João M. V. P.
Ferreira, Aires
KITE: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures
title KITE: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures
title_full KITE: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures
title_fullStr KITE: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures
title_full_unstemmed KITE: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures
title_short KITE: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures
title_sort kite: high-performance accurate modelling of electronic structure and response functions of large molecules, disordered crystals and heterostructures
topic Physics and Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7062052/
https://www.ncbi.nlm.nih.gov/pubmed/32257336
http://dx.doi.org/10.1098/rsos.191809
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