Crystallization induced ordering of hard magnetic L10 phase in melt-spun FeNi-based ribbons

The microstructure of newly developed hard magnetic Fe42Ni41.3SixB12-xP4Cu0.7 (x = 2 to 8 at%) nanocrystalline alloy ribbons has been studied by transmission electron microscopy (TEM) and electron diffraction. A high-density polycrystalline grains, ∼30 nm in size, were formed in a ribbon after annea...

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Main Authors: Kazuhisa Sato, Parmanand Sharma, Yan Zhang, Kana Takenaka, Akihiro Makino
Format: Article
Language:English
Published: AIP Publishing LLC 2016-05-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.4952968
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author Kazuhisa Sato
Parmanand Sharma
Yan Zhang
Kana Takenaka
Akihiro Makino
author_facet Kazuhisa Sato
Parmanand Sharma
Yan Zhang
Kana Takenaka
Akihiro Makino
author_sort Kazuhisa Sato
collection DOAJ
description The microstructure of newly developed hard magnetic Fe42Ni41.3SixB12-xP4Cu0.7 (x = 2 to 8 at%) nanocrystalline alloy ribbons has been studied by transmission electron microscopy (TEM) and electron diffraction. A high-density polycrystalline grains, ∼30 nm in size, were formed in a ribbon after annealing at 673 K for 288 hours. Elemental mapping of the annealed specimen revealed the coexistence of three regions, Fe-rich, Ni-rich, and nearly equiatomic Fe-Ni, with areal fractions of 37%, 40%, and 23 %, respectively. The equiatomic L10-type ordered phase of FeNi was detected in between the Fe and Ni-rich phases. The presence of superlattice reflections in nanobeam electron diffraction patterns confirmed the formation of the hard magnetic L10 phase beyond any doubt. The L10 phase of FeNi was detected in alloys annealed in the temperature range of 673 to 813 K. The present results suggest that the order-disorder transition temperature of L10 FeNi is higher than the previously reported value (593 K). The high diffusion rates of the constituent elements induced by the crystallization of an amorphous phase at relatively low temperature (∼673K) are responsible for the development of atomic ordering in FeNi.
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spelling doaj.art-8b6b5d8d0b5d42448f6d7a14d3a211a12022-12-21T23:40:24ZengAIP Publishing LLCAIP Advances2158-32262016-05-0165055218055218-910.1063/1.4952968083605ADVCrystallization induced ordering of hard magnetic L10 phase in melt-spun FeNi-based ribbonsKazuhisa Sato0Parmanand Sharma1Yan Zhang2Kana Takenaka3Akihiro Makino4Institute for Materials Research, Tohoku University, Sendai 980-8577, JapanInstitute for Materials Research, Tohoku University, Sendai 980-8577, JapanInstitute for Materials Research, Tohoku University, Sendai 980-8577, JapanInstitute for Materials Research, Tohoku University, Sendai 980-8577, JapanInstitute for Materials Research, Tohoku University, Sendai 980-8577, JapanThe microstructure of newly developed hard magnetic Fe42Ni41.3SixB12-xP4Cu0.7 (x = 2 to 8 at%) nanocrystalline alloy ribbons has been studied by transmission electron microscopy (TEM) and electron diffraction. A high-density polycrystalline grains, ∼30 nm in size, were formed in a ribbon after annealing at 673 K for 288 hours. Elemental mapping of the annealed specimen revealed the coexistence of three regions, Fe-rich, Ni-rich, and nearly equiatomic Fe-Ni, with areal fractions of 37%, 40%, and 23 %, respectively. The equiatomic L10-type ordered phase of FeNi was detected in between the Fe and Ni-rich phases. The presence of superlattice reflections in nanobeam electron diffraction patterns confirmed the formation of the hard magnetic L10 phase beyond any doubt. The L10 phase of FeNi was detected in alloys annealed in the temperature range of 673 to 813 K. The present results suggest that the order-disorder transition temperature of L10 FeNi is higher than the previously reported value (593 K). The high diffusion rates of the constituent elements induced by the crystallization of an amorphous phase at relatively low temperature (∼673K) are responsible for the development of atomic ordering in FeNi.http://dx.doi.org/10.1063/1.4952968
spellingShingle Kazuhisa Sato
Parmanand Sharma
Yan Zhang
Kana Takenaka
Akihiro Makino
Crystallization induced ordering of hard magnetic L10 phase in melt-spun FeNi-based ribbons
AIP Advances
title Crystallization induced ordering of hard magnetic L10 phase in melt-spun FeNi-based ribbons
title_full Crystallization induced ordering of hard magnetic L10 phase in melt-spun FeNi-based ribbons
title_fullStr Crystallization induced ordering of hard magnetic L10 phase in melt-spun FeNi-based ribbons
title_full_unstemmed Crystallization induced ordering of hard magnetic L10 phase in melt-spun FeNi-based ribbons
title_short Crystallization induced ordering of hard magnetic L10 phase in melt-spun FeNi-based ribbons
title_sort crystallization induced ordering of hard magnetic l10 phase in melt spun feni based ribbons
url http://dx.doi.org/10.1063/1.4952968
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AT parmanandsharma crystallizationinducedorderingofhardmagneticl10phaseinmeltspunfenibasedribbons
AT yanzhang crystallizationinducedorderingofhardmagneticl10phaseinmeltspunfenibasedribbons
AT kanatakenaka crystallizationinducedorderingofhardmagneticl10phaseinmeltspunfenibasedribbons
AT akihiromakino crystallizationinducedorderingofhardmagneticl10phaseinmeltspunfenibasedribbons