Site-specific spectroscopic measurement of spin and charge in (LuFeO3) m /(LuFe2O4)1 multiferroic superlattices

Understanding the inner workings of complex magnetoelectric multiferroics remains a challenge, as macroscopic techniques characterize average responses rather than the role of individual iron centers. Here, the authors reveal the origin of high-temperature magnetism in multiferroic superlattices.

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Autores principales: Shiyu Fan, Hena Das, Alejandro Rébola, Kevin A. Smith, Julia Mundy, Charles Brooks, Megan E. Holtz, David A. Muller, Craig J. Fennie, Ramamoorthy Ramesh, Darrell G. Schlom, Stephen McGill, Janice L. Musfeldt
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Publicado: Nature Portfolio 2020
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Acceso en línea:https://doaj.org/article/f6feb3c001214a4ca2434247ad3574bb
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spelling oai:doaj.org-article:f6feb3c001214a4ca2434247ad3574bb2021-12-02T17:31:42ZSite-specific spectroscopic measurement of spin and charge in (LuFeO3) m /(LuFe2O4)1 multiferroic superlattices10.1038/s41467-020-19285-92041-1723https://doaj.org/article/f6feb3c001214a4ca2434247ad3574bb2020-11-01T00:00:00Zhttps://doi.org/10.1038/s41467-020-19285-9https://doaj.org/toc/2041-1723Understanding the inner workings of complex magnetoelectric multiferroics remains a challenge, as macroscopic techniques characterize average responses rather than the role of individual iron centers. Here, the authors reveal the origin of high-temperature magnetism in multiferroic superlattices.Shiyu FanHena DasAlejandro RébolaKevin A. SmithJulia MundyCharles BrooksMegan E. HoltzDavid A. MullerCraig J. FennieRamamoorthy RameshDarrell G. SchlomStephen McGillJanice L. MusfeldtNature PortfolioarticleScienceQENNature Communications, Vol 11, Iss 1, Pp 1-9 (2020)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Shiyu Fan
Hena Das
Alejandro Rébola
Kevin A. Smith
Julia Mundy
Charles Brooks
Megan E. Holtz
David A. Muller
Craig J. Fennie
Ramamoorthy Ramesh
Darrell G. Schlom
Stephen McGill
Janice L. Musfeldt
Site-specific spectroscopic measurement of spin and charge in (LuFeO3) m /(LuFe2O4)1 multiferroic superlattices
description Understanding the inner workings of complex magnetoelectric multiferroics remains a challenge, as macroscopic techniques characterize average responses rather than the role of individual iron centers. Here, the authors reveal the origin of high-temperature magnetism in multiferroic superlattices.
format article
author Shiyu Fan
Hena Das
Alejandro Rébola
Kevin A. Smith
Julia Mundy
Charles Brooks
Megan E. Holtz
David A. Muller
Craig J. Fennie
Ramamoorthy Ramesh
Darrell G. Schlom
Stephen McGill
Janice L. Musfeldt
author_facet Shiyu Fan
Hena Das
Alejandro Rébola
Kevin A. Smith
Julia Mundy
Charles Brooks
Megan E. Holtz
David A. Muller
Craig J. Fennie
Ramamoorthy Ramesh
Darrell G. Schlom
Stephen McGill
Janice L. Musfeldt
author_sort Shiyu Fan
title Site-specific spectroscopic measurement of spin and charge in (LuFeO3) m /(LuFe2O4)1 multiferroic superlattices
title_short Site-specific spectroscopic measurement of spin and charge in (LuFeO3) m /(LuFe2O4)1 multiferroic superlattices
title_full Site-specific spectroscopic measurement of spin and charge in (LuFeO3) m /(LuFe2O4)1 multiferroic superlattices
title_fullStr Site-specific spectroscopic measurement of spin and charge in (LuFeO3) m /(LuFe2O4)1 multiferroic superlattices
title_full_unstemmed Site-specific spectroscopic measurement of spin and charge in (LuFeO3) m /(LuFe2O4)1 multiferroic superlattices
title_sort site-specific spectroscopic measurement of spin and charge in (lufeo3) m /(lufe2o4)1 multiferroic superlattices
publisher Nature Portfolio
publishDate 2020
url https://doaj.org/article/f6feb3c001214a4ca2434247ad3574bb
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