Optimizing Supercell Structures for Heisenberg Exchange Interaction Calculations

Fuente: arXiv
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Autori principali: Alaei, Mojtaba, Oganov, Artem R.
Natura: Preprint
Pubblicazione: 2024
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author Alaei, Mojtaba
Oganov, Artem R.
author_facet Alaei, Mojtaba
Oganov, Artem R.
contents In this paper, we introduce an efficient, linear algebra-based method for optimizing supercell selection to determine Heisenberg exchange parameters from DFT calculations. A widely used approach for deriving these parameters involves mapping DFT energies from various magnetic configurations within a supercell to the Heisenberg Hamiltonian. However, periodic boundary conditions in crystals limit the number of exchange parameters that can be extracted. To identify supercells that allow for more exchange parameters, we generate all possible supercell sizes within a specified range and apply null space analysis to the coefficient matrix derived from mapping DFT results to the Heisenberg Hamiltonian. By selecting optimal supercells, we significantly reduce computational time and resource consumption. This method, which involves generating and analyzing supercells before performing DFT calculations, has demonstrated a reduction in computational costs by 1-2 orders of magnitude in many cases.
format Preprint
id arxiv_https___arxiv_org_abs_2410_14356
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optimizing Supercell Structures for Heisenberg Exchange Interaction Calculations
Alaei, Mojtaba
Oganov, Artem R.
Materials Science
In this paper, we introduce an efficient, linear algebra-based method for optimizing supercell selection to determine Heisenberg exchange parameters from DFT calculations. A widely used approach for deriving these parameters involves mapping DFT energies from various magnetic configurations within a supercell to the Heisenberg Hamiltonian. However, periodic boundary conditions in crystals limit the number of exchange parameters that can be extracted. To identify supercells that allow for more exchange parameters, we generate all possible supercell sizes within a specified range and apply null space analysis to the coefficient matrix derived from mapping DFT results to the Heisenberg Hamiltonian. By selecting optimal supercells, we significantly reduce computational time and resource consumption. This method, which involves generating and analyzing supercells before performing DFT calculations, has demonstrated a reduction in computational costs by 1-2 orders of magnitude in many cases.
title Optimizing Supercell Structures for Heisenberg Exchange Interaction Calculations
topic Materials Science
url https://arxiv.org/abs/2410.14356