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Rare earth-based quaternary Heusler compounds MCoVZ (M = Lu, Y; Z = Si, Ge) with tunable band characteristics for potential spintronic applications

Magnetic Heusler compounds (MHCs) have recently attracted great attention since these types of material provide novel functionalities in spintronic and magneto-electronic devices. Among the MHCs, some compounds have been predicted to be spin-filter semiconductors [also called magnetic semiconductors...

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Autores principales: Wang, Xiaotian, Cheng, Zhenxiang, Liu, Guodong, Dai, Xuefang, Khenata, Rabah, Wang, Liying, Bouhemadou, Abdelmadjid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5668861/
https://www.ncbi.nlm.nih.gov/pubmed/29123678
http://dx.doi.org/10.1107/S2052252517013264
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author Wang, Xiaotian
Cheng, Zhenxiang
Liu, Guodong
Dai, Xuefang
Khenata, Rabah
Wang, Liying
Bouhemadou, Abdelmadjid
author_facet Wang, Xiaotian
Cheng, Zhenxiang
Liu, Guodong
Dai, Xuefang
Khenata, Rabah
Wang, Liying
Bouhemadou, Abdelmadjid
author_sort Wang, Xiaotian
collection PubMed
description Magnetic Heusler compounds (MHCs) have recently attracted great attention since these types of material provide novel functionalities in spintronic and magneto-electronic devices. Among the MHCs, some compounds have been predicted to be spin-filter semiconductors [also called magnetic semiconductors (MSs)], spin-gapless semiconductors (SGSs) or half-metals (HMs). In this work, by means of first-principles calculations, it is demonstrated that rare earth-based equiatomic quaternary Heusler (EQH) compounds with the formula MCoVZ (M = Lu, Y; Z = Si, Ge) are new spin-filter semiconductors with total magnetic moments of 3 µ(B). Furthermore, under uniform strain, there are physical transitions from spin-filter semiconductor (MS) → SGS → HM for EQH compounds with the formula LuCoVZ, and from HM → SGS → MS → SGS → HM for EQH compounds with the formula YCoVZ. Remarkably, for YCoVZ EQH compounds there are not only diverse physical transitions, but also different types of spin-gapless feature that can be observed with changing lattice constants. The structural stability of these four EQH compounds is also examined from the points of view of formation energy, cohesive energy and mechanical behaviour. This work is likely to inspire consideration of rare earth-based EQH compounds for application in future spintronic and magneto-electronic devices.
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spelling pubmed-56688612017-11-09 Rare earth-based quaternary Heusler compounds MCoVZ (M = Lu, Y; Z = Si, Ge) with tunable band characteristics for potential spintronic applications Wang, Xiaotian Cheng, Zhenxiang Liu, Guodong Dai, Xuefang Khenata, Rabah Wang, Liying Bouhemadou, Abdelmadjid IUCrJ Research Papers Magnetic Heusler compounds (MHCs) have recently attracted great attention since these types of material provide novel functionalities in spintronic and magneto-electronic devices. Among the MHCs, some compounds have been predicted to be spin-filter semiconductors [also called magnetic semiconductors (MSs)], spin-gapless semiconductors (SGSs) or half-metals (HMs). In this work, by means of first-principles calculations, it is demonstrated that rare earth-based equiatomic quaternary Heusler (EQH) compounds with the formula MCoVZ (M = Lu, Y; Z = Si, Ge) are new spin-filter semiconductors with total magnetic moments of 3 µ(B). Furthermore, under uniform strain, there are physical transitions from spin-filter semiconductor (MS) → SGS → HM for EQH compounds with the formula LuCoVZ, and from HM → SGS → MS → SGS → HM for EQH compounds with the formula YCoVZ. Remarkably, for YCoVZ EQH compounds there are not only diverse physical transitions, but also different types of spin-gapless feature that can be observed with changing lattice constants. The structural stability of these four EQH compounds is also examined from the points of view of formation energy, cohesive energy and mechanical behaviour. This work is likely to inspire consideration of rare earth-based EQH compounds for application in future spintronic and magneto-electronic devices. International Union of Crystallography 2017-10-06 /pmc/articles/PMC5668861/ /pubmed/29123678 http://dx.doi.org/10.1107/S2052252517013264 Text en © Xiaotian Wang et al. 2017 http://creativecommons.org/licenses/by/2.0/uk/ This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.http://creativecommons.org/licenses/by/2.0/uk/
spellingShingle Research Papers
Wang, Xiaotian
Cheng, Zhenxiang
Liu, Guodong
Dai, Xuefang
Khenata, Rabah
Wang, Liying
Bouhemadou, Abdelmadjid
Rare earth-based quaternary Heusler compounds MCoVZ (M = Lu, Y; Z = Si, Ge) with tunable band characteristics for potential spintronic applications
title Rare earth-based quaternary Heusler compounds MCoVZ (M = Lu, Y; Z = Si, Ge) with tunable band characteristics for potential spintronic applications
title_full Rare earth-based quaternary Heusler compounds MCoVZ (M = Lu, Y; Z = Si, Ge) with tunable band characteristics for potential spintronic applications
title_fullStr Rare earth-based quaternary Heusler compounds MCoVZ (M = Lu, Y; Z = Si, Ge) with tunable band characteristics for potential spintronic applications
title_full_unstemmed Rare earth-based quaternary Heusler compounds MCoVZ (M = Lu, Y; Z = Si, Ge) with tunable band characteristics for potential spintronic applications
title_short Rare earth-based quaternary Heusler compounds MCoVZ (M = Lu, Y; Z = Si, Ge) with tunable band characteristics for potential spintronic applications
title_sort rare earth-based quaternary heusler compounds mcovz (m = lu, y; z = si, ge) with tunable band characteristics for potential spintronic applications
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5668861/
https://www.ncbi.nlm.nih.gov/pubmed/29123678
http://dx.doi.org/10.1107/S2052252517013264
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