Tricritical point from high-field magnetoelastic and metamagnetic effects in UN
Abstract Uranium nitride (UN) is one of the most studied actinide materials as it is a promising fuel for the next generation of nuclear reactors. Despite large experimental and theoretical efforts, some of the fundamental questions such as degree of 5 f–electron localization/delocalization and its...
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doaj-0e8a92dac1594e8fb3f5b9920782a8312020-12-08T01:08:12ZengNature Publishing GroupScientific Reports2045-23222017-07-01711810.1038/s41598-017-06154-7Tricritical point from high-field magnetoelastic and metamagnetic effects in UNK. Shrestha0D. Antonio1M. Jaime2N. Harrison3D. S. Mast4D. Safarik5T. Durakiewicz6J.-C. Griveau7K. Gofryk8Idaho National LaboratoryIdaho National LaboratoryLos Alamos National LaboratoryLos Alamos National LaboratoryIdaho National LaboratoryLos Alamos National LaboratoryLos Alamos National LaboratoryEuropean Commission, Joint Research Centre, Directorate for Nuclear Safety and SecurityIdaho National LaboratoryAbstract Uranium nitride (UN) is one of the most studied actinide materials as it is a promising fuel for the next generation of nuclear reactors. Despite large experimental and theoretical efforts, some of the fundamental questions such as degree of 5 f–electron localization/delocalization and its relationship to magneto-vibrational properties are not resolved yet. Here we show that the magnetostriction of UN measured in pulsed magnetic fields up to 65 T and below the Néel temperature is large and exhibits complex behavior with two transitions. While the high field anomaly is a field-induced metamagnetic-like transition and affects both magnetisation and magnetostriction, the low field anomaly does not contribute to the magnetic susceptibility. Our data suggest a change in the nature of the metamagnetic transition from first to second order-like at a tricritical point at T tri ∼ 24 K and H tri ∼ 52 T. The induced magnetic moment at 60 T might suggest that only one subset of magnetic moments has aligned along the field direction. Using the results obtained here we have constructed a magnetic phase diagram of UN. These studies demonstrate that dilatometry in high fields is an effective method to investigate the magneto-structural coupling in actinide materials.https://doi.org/10.1038/s41598-017-06154-7 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
K. Shrestha D. Antonio M. Jaime N. Harrison D. S. Mast D. Safarik T. Durakiewicz J.-C. Griveau K. Gofryk |
spellingShingle |
K. Shrestha D. Antonio M. Jaime N. Harrison D. S. Mast D. Safarik T. Durakiewicz J.-C. Griveau K. Gofryk Tricritical point from high-field magnetoelastic and metamagnetic effects in UN Scientific Reports |
author_facet |
K. Shrestha D. Antonio M. Jaime N. Harrison D. S. Mast D. Safarik T. Durakiewicz J.-C. Griveau K. Gofryk |
author_sort |
K. Shrestha |
title |
Tricritical point from high-field magnetoelastic and metamagnetic effects in UN |
title_short |
Tricritical point from high-field magnetoelastic and metamagnetic effects in UN |
title_full |
Tricritical point from high-field magnetoelastic and metamagnetic effects in UN |
title_fullStr |
Tricritical point from high-field magnetoelastic and metamagnetic effects in UN |
title_full_unstemmed |
Tricritical point from high-field magnetoelastic and metamagnetic effects in UN |
title_sort |
tricritical point from high-field magnetoelastic and metamagnetic effects in un |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2017-07-01 |
description |
Abstract Uranium nitride (UN) is one of the most studied actinide materials as it is a promising fuel for the next generation of nuclear reactors. Despite large experimental and theoretical efforts, some of the fundamental questions such as degree of 5 f–electron localization/delocalization and its relationship to magneto-vibrational properties are not resolved yet. Here we show that the magnetostriction of UN measured in pulsed magnetic fields up to 65 T and below the Néel temperature is large and exhibits complex behavior with two transitions. While the high field anomaly is a field-induced metamagnetic-like transition and affects both magnetisation and magnetostriction, the low field anomaly does not contribute to the magnetic susceptibility. Our data suggest a change in the nature of the metamagnetic transition from first to second order-like at a tricritical point at T tri ∼ 24 K and H tri ∼ 52 T. The induced magnetic moment at 60 T might suggest that only one subset of magnetic moments has aligned along the field direction. Using the results obtained here we have constructed a magnetic phase diagram of UN. These studies demonstrate that dilatometry in high fields is an effective method to investigate the magneto-structural coupling in actinide materials. |
url |
https://doi.org/10.1038/s41598-017-06154-7 |
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