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Phase Stability of Iron Nitride Fe(4)N at High Pressure—Pressure-Dependent Evolution of Phase Equilibria in the Fe–N System

Although the general instability of the iron nitride γ′-Fe(4)N with respect to other phases at high pressure is well established, the actual type of phase transitions and equilibrium conditions of their occurrence are, as of yet, poorly investigated. In the present study, samples of γ′-Fe(4)N and mi...

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Autores principales: Wetzel, Marius Holger, Rabending, Tina Trixy, Friák, Martin, Všianská, Monika, Šob, Mojmír, Leineweber, Andreas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8307547/
https://www.ncbi.nlm.nih.gov/pubmed/34300885
http://dx.doi.org/10.3390/ma14143963
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author Wetzel, Marius Holger
Rabending, Tina Trixy
Friák, Martin
Všianská, Monika
Šob, Mojmír
Leineweber, Andreas
author_facet Wetzel, Marius Holger
Rabending, Tina Trixy
Friák, Martin
Všianská, Monika
Šob, Mojmír
Leineweber, Andreas
author_sort Wetzel, Marius Holger
collection PubMed
description Although the general instability of the iron nitride γ′-Fe(4)N with respect to other phases at high pressure is well established, the actual type of phase transitions and equilibrium conditions of their occurrence are, as of yet, poorly investigated. In the present study, samples of γ′-Fe(4)N and mixtures of α Fe and γ′-Fe(4)N powders have been heat-treated at temperatures between 250 and 1000 °C and pressures between 2 and 8 GPa in a multi-anvil press, in order to investigate phase equilibria involving the γ′ phase. Samples heat-treated at high-pressure conditions, were quenched, subsequently decompressed, and then analysed ex situ. Microstructure analysis is used to derive implications on the phase transformations during the heat treatments. Further, it is confirmed that the Fe–N phases in the target composition range are quenchable. Thus, phase proportions and chemical composition of the phases, determined from ex situ X-ray diffraction data, allowed conclusions about the phase equilibria at high-pressure conditions. Further, evidence for the low-temperature eutectoid decomposition [Formula: see text] is presented for the first time. From the observed equilibria, a P–T projection of the univariant equilibria in the Fe-rich portion of the Fe–N system is derived, which features a quadruple point at 5 GPa and 375 °C, above which γ′-Fe(4)N is thermodynamically unstable. The experimental work is supplemented by ab initio calculations in order to discuss the relative phase stability and energy landscape in the Fe–N system, from the ground state to conditions accessible in the multi-anvil experiments. It is concluded that γ′-Fe(4)N, which is unstable with respect to other phases at 0 K (at any pressure), has to be entropically stabilised in order to occur as stable phase in the system. In view of the frequently reported metastable retention of the γ′ phase during room temperature compression experiments, energetic and kinetic aspects of the polymorphic transition [Formula: see text] are discussed.
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spelling pubmed-83075472021-07-25 Phase Stability of Iron Nitride Fe(4)N at High Pressure—Pressure-Dependent Evolution of Phase Equilibria in the Fe–N System Wetzel, Marius Holger Rabending, Tina Trixy Friák, Martin Všianská, Monika Šob, Mojmír Leineweber, Andreas Materials (Basel) Article Although the general instability of the iron nitride γ′-Fe(4)N with respect to other phases at high pressure is well established, the actual type of phase transitions and equilibrium conditions of their occurrence are, as of yet, poorly investigated. In the present study, samples of γ′-Fe(4)N and mixtures of α Fe and γ′-Fe(4)N powders have been heat-treated at temperatures between 250 and 1000 °C and pressures between 2 and 8 GPa in a multi-anvil press, in order to investigate phase equilibria involving the γ′ phase. Samples heat-treated at high-pressure conditions, were quenched, subsequently decompressed, and then analysed ex situ. Microstructure analysis is used to derive implications on the phase transformations during the heat treatments. Further, it is confirmed that the Fe–N phases in the target composition range are quenchable. Thus, phase proportions and chemical composition of the phases, determined from ex situ X-ray diffraction data, allowed conclusions about the phase equilibria at high-pressure conditions. Further, evidence for the low-temperature eutectoid decomposition [Formula: see text] is presented for the first time. From the observed equilibria, a P–T projection of the univariant equilibria in the Fe-rich portion of the Fe–N system is derived, which features a quadruple point at 5 GPa and 375 °C, above which γ′-Fe(4)N is thermodynamically unstable. The experimental work is supplemented by ab initio calculations in order to discuss the relative phase stability and energy landscape in the Fe–N system, from the ground state to conditions accessible in the multi-anvil experiments. It is concluded that γ′-Fe(4)N, which is unstable with respect to other phases at 0 K (at any pressure), has to be entropically stabilised in order to occur as stable phase in the system. In view of the frequently reported metastable retention of the γ′ phase during room temperature compression experiments, energetic and kinetic aspects of the polymorphic transition [Formula: see text] are discussed. MDPI 2021-07-15 /pmc/articles/PMC8307547/ /pubmed/34300885 http://dx.doi.org/10.3390/ma14143963 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wetzel, Marius Holger
Rabending, Tina Trixy
Friák, Martin
Všianská, Monika
Šob, Mojmír
Leineweber, Andreas
Phase Stability of Iron Nitride Fe(4)N at High Pressure—Pressure-Dependent Evolution of Phase Equilibria in the Fe–N System
title Phase Stability of Iron Nitride Fe(4)N at High Pressure—Pressure-Dependent Evolution of Phase Equilibria in the Fe–N System
title_full Phase Stability of Iron Nitride Fe(4)N at High Pressure—Pressure-Dependent Evolution of Phase Equilibria in the Fe–N System
title_fullStr Phase Stability of Iron Nitride Fe(4)N at High Pressure—Pressure-Dependent Evolution of Phase Equilibria in the Fe–N System
title_full_unstemmed Phase Stability of Iron Nitride Fe(4)N at High Pressure—Pressure-Dependent Evolution of Phase Equilibria in the Fe–N System
title_short Phase Stability of Iron Nitride Fe(4)N at High Pressure—Pressure-Dependent Evolution of Phase Equilibria in the Fe–N System
title_sort phase stability of iron nitride fe(4)n at high pressure—pressure-dependent evolution of phase equilibria in the fe–n system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8307547/
https://www.ncbi.nlm.nih.gov/pubmed/34300885
http://dx.doi.org/10.3390/ma14143963
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