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Spin Glass State in Strained La(2/3)Ca(1/3)MnO(3) Thin Films

Epitaxial strain modifies the physical properties of thin films deposited on single-crystal substrates. In a previous work, we demonstrated that in the case of La(2/3)Ca(1/3)MnO(3) thin films the strain induced by the substrate can produce the segregation of a non-ferromagnetic layer (NFL) at the to...

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Autores principales: Lucas, Irene, Marcano, Noelia, Prokscha, Thomas, Magén, César, Corcuera, Rubén, Morellón, Luis, De Teresa, José M., Ibarra, M. Ricardo, Algarabel, Pedro A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9609232/
https://www.ncbi.nlm.nih.gov/pubmed/36296835
http://dx.doi.org/10.3390/nano12203646
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author Lucas, Irene
Marcano, Noelia
Prokscha, Thomas
Magén, César
Corcuera, Rubén
Morellón, Luis
De Teresa, José M.
Ibarra, M. Ricardo
Algarabel, Pedro A.
author_facet Lucas, Irene
Marcano, Noelia
Prokscha, Thomas
Magén, César
Corcuera, Rubén
Morellón, Luis
De Teresa, José M.
Ibarra, M. Ricardo
Algarabel, Pedro A.
author_sort Lucas, Irene
collection PubMed
description Epitaxial strain modifies the physical properties of thin films deposited on single-crystal substrates. In a previous work, we demonstrated that in the case of La(2/3)Ca(1/3)MnO(3) thin films the strain induced by the substrate can produce the segregation of a non-ferromagnetic layer (NFL) at the top surface of ferromagnetic epitaxial La(2/3)Ca(1/3)MnO(3) for a critical value of the tetragonality τ, defined as τ = |c − a|a, of τ(C) ≈ 0.024. Although preliminary analysis suggested its antiferromagnetic nature, to date a complete characterization of the magnetic state of such an NFL has not been performed. Here, we present a comprehensive magnetic characterization of the strain-induced segregated NFL. The field-cooled magnetic hysteresis loops exhibit an exchange bias mechanism below T ≈ 80 K, which is well below the Curie temperature of the ferromagnetic La(2/3)Ca(1/3)MnO(3) layer. The exchange bias and coercive fields decay exponentially with temperature, which is commonly accepted to describe spin-glass (SG) behavior. The signatures of slow dynamics were confirmed by slow spin relaxation over a wide temperature regime. Low-energy muon spectroscopy experiments directly evidence the slowing down of the magnetic moments below ~100 K in the NFL. The experimental results indicate the SG nature of the NFL. This SG state can be understood within the context of the competing ferromagnetic and antiferromagnetic interactions of similar energies.
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spelling pubmed-96092322022-10-28 Spin Glass State in Strained La(2/3)Ca(1/3)MnO(3) Thin Films Lucas, Irene Marcano, Noelia Prokscha, Thomas Magén, César Corcuera, Rubén Morellón, Luis De Teresa, José M. Ibarra, M. Ricardo Algarabel, Pedro A. Nanomaterials (Basel) Article Epitaxial strain modifies the physical properties of thin films deposited on single-crystal substrates. In a previous work, we demonstrated that in the case of La(2/3)Ca(1/3)MnO(3) thin films the strain induced by the substrate can produce the segregation of a non-ferromagnetic layer (NFL) at the top surface of ferromagnetic epitaxial La(2/3)Ca(1/3)MnO(3) for a critical value of the tetragonality τ, defined as τ = |c − a|a, of τ(C) ≈ 0.024. Although preliminary analysis suggested its antiferromagnetic nature, to date a complete characterization of the magnetic state of such an NFL has not been performed. Here, we present a comprehensive magnetic characterization of the strain-induced segregated NFL. The field-cooled magnetic hysteresis loops exhibit an exchange bias mechanism below T ≈ 80 K, which is well below the Curie temperature of the ferromagnetic La(2/3)Ca(1/3)MnO(3) layer. The exchange bias and coercive fields decay exponentially with temperature, which is commonly accepted to describe spin-glass (SG) behavior. The signatures of slow dynamics were confirmed by slow spin relaxation over a wide temperature regime. Low-energy muon spectroscopy experiments directly evidence the slowing down of the magnetic moments below ~100 K in the NFL. The experimental results indicate the SG nature of the NFL. This SG state can be understood within the context of the competing ferromagnetic and antiferromagnetic interactions of similar energies. MDPI 2022-10-18 /pmc/articles/PMC9609232/ /pubmed/36296835 http://dx.doi.org/10.3390/nano12203646 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lucas, Irene
Marcano, Noelia
Prokscha, Thomas
Magén, César
Corcuera, Rubén
Morellón, Luis
De Teresa, José M.
Ibarra, M. Ricardo
Algarabel, Pedro A.
Spin Glass State in Strained La(2/3)Ca(1/3)MnO(3) Thin Films
title Spin Glass State in Strained La(2/3)Ca(1/3)MnO(3) Thin Films
title_full Spin Glass State in Strained La(2/3)Ca(1/3)MnO(3) Thin Films
title_fullStr Spin Glass State in Strained La(2/3)Ca(1/3)MnO(3) Thin Films
title_full_unstemmed Spin Glass State in Strained La(2/3)Ca(1/3)MnO(3) Thin Films
title_short Spin Glass State in Strained La(2/3)Ca(1/3)MnO(3) Thin Films
title_sort spin glass state in strained la(2/3)ca(1/3)mno(3) thin films
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9609232/
https://www.ncbi.nlm.nih.gov/pubmed/36296835
http://dx.doi.org/10.3390/nano12203646
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