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Tytuł pozycji:

Study of disorder in pulsed laser deposited double perovskite oxides by first-principle structure prediction

Tytuł:
Study of disorder in pulsed laser deposited double perovskite oxides by first-principle structure prediction
Autorzy:
Edoardo Fertitta
Sujit Das
Debalina Banerjee
Farbod Ebrahimi
Clément Barraud
Kai Du
He Tian
Chris J. Pickard
Cedric Weber
Ramamoorthy Ramesh
Peter Littlewood
David Dubbink
Temat:
Materials of engineering and construction. Mechanics of materials
TA401-492
Computer software
QA76.75-76.765
Źródło:
npj Computational Materials, Vol 7, Iss 1, Pp 1-8 (2021)
Wydawca:
Nature Portfolio, 2021.
Rok publikacji:
2021
Kolekcja:
LCC:Materials of engineering and construction. Mechanics of materials
LCC:Computer software
Typ dokumentu:
article
Opis pliku:
electronic resource
Język:
English
ISSN:
2057-3960
Relacje:
https://doaj.org/toc/2057-3960
DOI:
10.1038/s41524-021-00561-1
Dostęp URL:
https://doaj.org/article/72d209f7cfe74227b6345e0efb5cdd0b  Link otwiera się w nowym oknie
Numer akcesji:
edsdoj.72d209f7cfe74227b6345e0efb5cdd0b
Czasopismo naukowe
Abstract Double perovskite oxides, with generalized formula A2BB $$^{\prime}$$ ′ O6, attract wide interest due to their multiferroic and charge transfer properties. They offer a wide range of potential applications such as spintronics and electrically tunable devices. However, great practical limitations are encountered, since a spontaneous order of the B-site cations is notoriously hard to achieve. In this joint experimental-theoretical work, we focused on the characterization of double perovskites La2TiFeO6 and La2VCuO6 films grown by pulsed laser deposition and interpretation of the observed B-site disorder and partial charge transfer between the B-site ions. A random structure sampling method was used to show that several phases compete due to their corresponding configurational entropy. In order to capture a representative picture of the most relevant competing microstates in realistic experimental conditions, this search included the potential formation of non-stoichiometric phases as well, which could also be directly related to the observed partial charge transfer. We optimized the information encapsulated in the potential energy landscape, captured via structure sampling, by evaluating both enthalpic and entropic terms. These terms were employed as a metric for the competition of different phases. This approach, applied herein specifically to La2TiFeO6, highlights the presence of highly entropic phases above the ground state which can explain the disorder observed frequently in the broader class of double perovskite oxides.

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