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Critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in Mn-Fe-Ni-Ge compounds

Magnetostructural coupling, which is the coincidence of crystallographic and magnetic transition, has obtained intense attention for its abundant magnetoresponse effects and promising technological applications, such as solid-state refrigeration, magnetic actuators and sensors. The hexagonal Ni(2)In...

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Autores principales: Wu, Rongrong, Shen, Feiran, Hu, Fengxia, Wang, Jing, Bao, Lifu, Zhang, Lei, Liu, Yao, Zhao, Yingying, Liang, Feixiang, Zuo, Wenliang, Sun, Jirong, Shen, Baogen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4756685/
https://www.ncbi.nlm.nih.gov/pubmed/26883719
http://dx.doi.org/10.1038/srep20993
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author Wu, Rongrong
Shen, Feiran
Hu, Fengxia
Wang, Jing
Bao, Lifu
Zhang, Lei
Liu, Yao
Zhao, Yingying
Liang, Feixiang
Zuo, Wenliang
Sun, Jirong
Shen, Baogen
author_facet Wu, Rongrong
Shen, Feiran
Hu, Fengxia
Wang, Jing
Bao, Lifu
Zhang, Lei
Liu, Yao
Zhao, Yingying
Liang, Feixiang
Zuo, Wenliang
Sun, Jirong
Shen, Baogen
author_sort Wu, Rongrong
collection PubMed
description Magnetostructural coupling, which is the coincidence of crystallographic and magnetic transition, has obtained intense attention for its abundant magnetoresponse effects and promising technological applications, such as solid-state refrigeration, magnetic actuators and sensors. The hexagonal Ni(2)In-type compounds have attracted much attraction due to the strong magnetostructural coupling and the resulted giant negative thermal expansion and magnetocaloric effect. However, the as-prepared samples are quite brittle and naturally collapse into powders. Here, we report the effect of particle size on the magnetostructural coupling and magnetocaloric effect in the Ni(2)In-type Mn-Fe-Ni-Ge compound, which undergoes a large lattice change across the transformation from paramagnetic austenite to ferromagnetic martensite. The disappearance of martensitic transformation in a large amount of austenitic phase with reducing particle size, to our best knowledge, has not been reported up to now. The ratio can be as high as 40.6% when the MnNi(0.8)Fe(0.2)Ge bulk was broken into particles in the size range of 5~15 μm. Meanwhile, the remained magnetostructural transition gets wider and the magnetic hysteresis becomes smaller. As a result, the entropy change drops, but the effective cooling power RC(effe) increases and attains to the maximum at particles in the range of 20~40 μm. These observations provide constructive information and highly benefit practical applications for this class of novel magnetoresponse materials.
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spelling pubmed-47566852016-02-25 Critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in Mn-Fe-Ni-Ge compounds Wu, Rongrong Shen, Feiran Hu, Fengxia Wang, Jing Bao, Lifu Zhang, Lei Liu, Yao Zhao, Yingying Liang, Feixiang Zuo, Wenliang Sun, Jirong Shen, Baogen Sci Rep Article Magnetostructural coupling, which is the coincidence of crystallographic and magnetic transition, has obtained intense attention for its abundant magnetoresponse effects and promising technological applications, such as solid-state refrigeration, magnetic actuators and sensors. The hexagonal Ni(2)In-type compounds have attracted much attraction due to the strong magnetostructural coupling and the resulted giant negative thermal expansion and magnetocaloric effect. However, the as-prepared samples are quite brittle and naturally collapse into powders. Here, we report the effect of particle size on the magnetostructural coupling and magnetocaloric effect in the Ni(2)In-type Mn-Fe-Ni-Ge compound, which undergoes a large lattice change across the transformation from paramagnetic austenite to ferromagnetic martensite. The disappearance of martensitic transformation in a large amount of austenitic phase with reducing particle size, to our best knowledge, has not been reported up to now. The ratio can be as high as 40.6% when the MnNi(0.8)Fe(0.2)Ge bulk was broken into particles in the size range of 5~15 μm. Meanwhile, the remained magnetostructural transition gets wider and the magnetic hysteresis becomes smaller. As a result, the entropy change drops, but the effective cooling power RC(effe) increases and attains to the maximum at particles in the range of 20~40 μm. These observations provide constructive information and highly benefit practical applications for this class of novel magnetoresponse materials. Nature Publishing Group 2016-02-17 /pmc/articles/PMC4756685/ /pubmed/26883719 http://dx.doi.org/10.1038/srep20993 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Wu, Rongrong
Shen, Feiran
Hu, Fengxia
Wang, Jing
Bao, Lifu
Zhang, Lei
Liu, Yao
Zhao, Yingying
Liang, Feixiang
Zuo, Wenliang
Sun, Jirong
Shen, Baogen
Critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in Mn-Fe-Ni-Ge compounds
title Critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in Mn-Fe-Ni-Ge compounds
title_full Critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in Mn-Fe-Ni-Ge compounds
title_fullStr Critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in Mn-Fe-Ni-Ge compounds
title_full_unstemmed Critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in Mn-Fe-Ni-Ge compounds
title_short Critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in Mn-Fe-Ni-Ge compounds
title_sort critical dependence of magnetostructural coupling and magnetocaloric effect on particle size in mn-fe-ni-ge compounds
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4756685/
https://www.ncbi.nlm.nih.gov/pubmed/26883719
http://dx.doi.org/10.1038/srep20993
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