Driving force of atomic ordering in Fe$_{1-x}$Pt$_{x}$, investigated by density functional theory and machine-learning interatomic potentials Monte Carlo simulations

Fuente: arXiv
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Autori principali: Tsuyama, Tomoyuki, Kaneshita, Takeshi, Matsui, Akira, Ochiai, Kohei, Tanaka, Hiroaki, Kondo, Ryohei, Fukushima, Takayuki, Ohashi, Haruhisa, Hashimoto, Atsushi, Okuno, Yoshishige, Zhu, Jian-Gang
Natura: Preprint
Pubblicazione: 2024
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author Tsuyama, Tomoyuki
Kaneshita, Takeshi
Matsui, Akira
Ochiai, Kohei
Tanaka, Hiroaki
Kondo, Ryohei
Fukushima, Takayuki
Ohashi, Haruhisa
Hashimoto, Atsushi
Okuno, Yoshishige
Zhu, Jian-Gang
author_facet Tsuyama, Tomoyuki
Kaneshita, Takeshi
Matsui, Akira
Ochiai, Kohei
Tanaka, Hiroaki
Kondo, Ryohei
Fukushima, Takayuki
Ohashi, Haruhisa
Hashimoto, Atsushi
Okuno, Yoshishige
Zhu, Jian-Gang
contents We report the mechanisms of atomic ordering in Fe$_{1-x}$Pt$_{x}$ alloys using density functional theory (DFT) and machine-learning interatomic potential Monte Carlo (MLIP-MC) simulations. We clarified that the formation enthalpy of the ordered phase was significantly enhanced by spin polarization compared to that of the disordered phase. Analysis of the density of states indicated that coherence in local potentials in the ordered phase brings energy gain over the disordered phases, when spin is considered. MLIP-MC simulations were performed to investigate the phase transition of atomic ordering at a finite temperature. The model trained using the DFT dataset with spin polarization exhibited quantitatively good agreement with previous experiments and thermodynamic calculations across a wide range of Pt compositions, whereas the model without spin significantly underestimated the transition temperature. Through this study, we clarified that spin polarization is essential for accurately accounting for the ordered phase in Fe-Pt bimetallic alloys, even above the Curie temperature, possibly because of the remaining short-range spin order.
format Preprint
id arxiv_https___arxiv_org_abs_2412_18198
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Driving force of atomic ordering in Fe$_{1-x}$Pt$_{x}$, investigated by density functional theory and machine-learning interatomic potentials Monte Carlo simulations
Tsuyama, Tomoyuki
Kaneshita, Takeshi
Matsui, Akira
Ochiai, Kohei
Tanaka, Hiroaki
Kondo, Ryohei
Fukushima, Takayuki
Ohashi, Haruhisa
Hashimoto, Atsushi
Okuno, Yoshishige
Zhu, Jian-Gang
Materials Science
We report the mechanisms of atomic ordering in Fe$_{1-x}$Pt$_{x}$ alloys using density functional theory (DFT) and machine-learning interatomic potential Monte Carlo (MLIP-MC) simulations. We clarified that the formation enthalpy of the ordered phase was significantly enhanced by spin polarization compared to that of the disordered phase. Analysis of the density of states indicated that coherence in local potentials in the ordered phase brings energy gain over the disordered phases, when spin is considered. MLIP-MC simulations were performed to investigate the phase transition of atomic ordering at a finite temperature. The model trained using the DFT dataset with spin polarization exhibited quantitatively good agreement with previous experiments and thermodynamic calculations across a wide range of Pt compositions, whereas the model without spin significantly underestimated the transition temperature. Through this study, we clarified that spin polarization is essential for accurately accounting for the ordered phase in Fe-Pt bimetallic alloys, even above the Curie temperature, possibly because of the remaining short-range spin order.
title Driving force of atomic ordering in Fe$_{1-x}$Pt$_{x}$, investigated by density functional theory and machine-learning interatomic potentials Monte Carlo simulations
topic Materials Science
url https://arxiv.org/abs/2412.18198