Detail publikace
Effect of electron localization in theoretical design of Ni-Mn-Ga based magnetic shape memory alloys
ZELENÝ, M. SEDLÁK, P. HECZKO, O. SEINER, H. VEŘTÁT, P. OBATA, M. KOTANI, T. ODA, T. STRAKA, L.
Anglický název
Effect of electron localization in theoretical design of Ni-Mn-Ga based magnetic shape memory alloys
Typ
článek v časopise ve Web of Science, Jimp
Jazyk
en
Originální abstrakt
The precise determination of the stability of different martensitic phases is an essential task in the successful design of (magnetic) shape memory alloys. We evaluate the effect of electron delocalization correction on the predictive power of density functional theory for Ni-Mn-Ga, the prototype magnetic shape memory compound. Using the corrected Hubbard-model-based generalized gradient approximation (GGA+U), we varied the Coulomb repulsion parameter U from 0 eV to 3 eV to reveal the evolution of predicted material parameters. The increasing localization on Mn sites results in the increasing stabilization of 10M modulated structure in stoichiometric Ni2MnGa in agreement with experiment whereas uncorrected GGA and meta-GGA functional provide the lowest energy for 4O modulated structure and nonmodulated structure, respectively. GGA+U calculations indicate that 10M structure is more stable than other martensitic structures for U > 1.2 eV. The key features of density of states (DOS) responsible for the stabilization or destabilization of particular martensitic phases calculated with GGA+U are found also in DOS calculated with advanced quasi-particle self-consistent GW (QSGW) method. It supports the physical background of Hubbard correction. Moreover, the calculations with U = 1.8 eV provide the best agreement with experimental data for lattice parameters of stoichiometric and off-stoichiometric alloys. (C) 2021 The Authors. Published by Elsevier Ltd.
Anglický abstrakt
The precise determination of the stability of different martensitic phases is an essential task in the successful design of (magnetic) shape memory alloys. We evaluate the effect of electron delocalization correction on the predictive power of density functional theory for Ni-Mn-Ga, the prototype magnetic shape memory compound. Using the corrected Hubbard-model-based generalized gradient approximation (GGA+U), we varied the Coulomb repulsion parameter U from 0 eV to 3 eV to reveal the evolution of predicted material parameters. The increasing localization on Mn sites results in the increasing stabilization of 10M modulated structure in stoichiometric Ni2MnGa in agreement with experiment whereas uncorrected GGA and meta-GGA functional provide the lowest energy for 4O modulated structure and nonmodulated structure, respectively. GGA+U calculations indicate that 10M structure is more stable than other martensitic structures for U > 1.2 eV. The key features of density of states (DOS) responsible for the stabilization or destabilization of particular martensitic phases calculated with GGA+U are found also in DOS calculated with advanced quasi-particle self-consistent GW (QSGW) method. It supports the physical background of Hubbard correction. Moreover, the calculations with U = 1.8 eV provide the best agreement with experimental data for lattice parameters of stoichiometric and off-stoichiometric alloys. (C) 2021 The Authors. Published by Elsevier Ltd.
Klíčová slova anglicky
Martensitic transformation; Magnetic shape memory alloys; Phase stability; Electron localization; Ab initio calculations; Exchange-correlation energy
Vydáno
19.06.2021
Nakladatel
Elsevier
Místo
OXFORD
ISSN
0264-1275
Ročník
209
Číslo
1
Strany od–do
109917–-
Počet stran
10
BIBTEX
@article{BUT175088,
author="Martin {Zelený} and Petr {Sedlák} and Oleg {Heczko} and Hanuš {Seiner} and Petr {Veřtát} and Masao {Obata} and Takao {Kotani} and Tatsuki {Oda} and Ladislav {Straka},
title="Effect of electron localization in theoretical design of Ni-Mn-Ga based magnetic shape memory alloys",
year="2021",
volume="209",
number="1",
month="June",
pages="109917---",
publisher="Elsevier",
address="OXFORD",
issn="0264-1275"
}