Back to Search Start Over

Nanostructure stabilization by low-temperature dopant pinning in multiferroic BiFeO3-based thin films produced by aqueous chemical solution deposition

Authors :
Thomas Vranken
Federico Mompean
Teresa Jardiel
Ricardo Jiménez
Marlies K. Van Bael
M. L. Calzada
Mar García-Hernández
David G. Calatayud
Marco Peiteado
An Hardy
Carlos Gumiel
Amador C. Caballero
Ministerio de Economía y Competitividad (España)
Ministerio de Ciencia, Innovación y Universidades (España)
Research Foundation - Flanders
European Science Foundation
Fundación General CSIC
CSIC - Unidad de Recursos de Información Científica para la Investigación (URICI)
Gumiel, Carlos
Jardiel, Teresa
Calatayud, David G.
Vranken, Thomas
Van Bael, Marlies K.
Calzada, M. L.
Jiménez, Ricardo
García-Hernández, M.
Mompean, F. J.
Caballero Cuesta, Amador
Peiteado, Marco
Garcia-Hernandez, Mar/0000-0002-5987-0647
Van Bael
Marlies/0000-0002-5516-7962
CALZADA, M. LOURDES/0000-0002-2286-653X
Calatayud, David G./0000-0003-2633-2989
Mompean, Federico
J./0000-0002-6346-1475
Gumiel, Carlos [0000-0002-5525-5022]
Jardiel, Teresa [0000-0002-0163-7324]
Calatayud, David G. [0000-0003-2633-2989]
Vranken, Thomas [0000-0002-4707-7924]
Van Bael, Marlies K. [0000-0002-5516-7962]
Calzada, M. L. [0000-0002-2286-653X]
Jiménez, Ricardo [0000-0001-9174-6569]
García-Hernández, M. [0000-0002-5987-0647]
Mompean, F. J. [0000-0002-6346-1475]
Caballero Cuesta, Amador [0000-0002-0571-6302]
Peiteado, Marco [0000-0003-3510-6676]
Source :
Digital.CSIC. Repositorio Institucional del CSIC, instname
Publication Year :
2020
Publisher :
Royal Society of Chemistry (UK), 2020.

Abstract

[EN] The metastability impediment which usually prevents the obtaining of a phase-pure BiFeO3 material can be dramatically stressed when taking the system to the thin film configuration. In order to preserve the stoichiometry, the films need to be processed at low temperatures and hence the solid-state diffusion processes which usually govern the microstructural evolution in bulk cannot be expected to also rule the development of the functional films. All these circumstances were presumed when exploring the possibilities of an aqueous solution–gel process plus spin-coating deposition method to reproduce, in thin film dimensions, the excellent multiferroic properties that have been previously observed with an optimized rare-earth and Ti4+-codoped BiFeO3 bulk composition. The experiments indicate high reliability for the tested methodology, allowing for the obtaining of homogeneous dense films at temperatures as low as 600 1C and with a tunable multiferroic response depending on the formulated rare-earth (Sm or Nd). Thorough structural characterization of the films reveals that despite the low temperature processing restrictions, effective microstructural control is achieved at the nanoscale, which is attributed to effective retention (pinning) of the dopants inside the perovskite structure of BiFeO3.<br />his work was supported by the Spanish Ministry of Science, Innovation and Universities (MICINN) under projects MAT2016-80182-R, MAT2017-87134-c2-2-R and partially by the project MAT2016-76851-R. It was also supported by the Research Foundation Flanders (FWO-Vlaanderen), project number G039414N. Dr T. Jardiel acknowledges the European Science Foundation (ESF) and the Ramon y Cajal Program of MICINN for the financial support. Work by Dr Calatayud was also supported by Fundación General CSIC (COMFUTURO Program). We acknowledge support of the publication fee by the CSIC Open Access Publication Support Initiative through its Unit of Information Resources for Research (URICI).

Details

Language :
English
Database :
OpenAIRE
Journal :
Digital.CSIC. Repositorio Institucional del CSIC, instname
Accession number :
edsair.doi.dedup.....2c61f3851bbd4347a2a2399b88fdb8ac