Cargando…

A Novel, Simple and Highly Efficient Route to Obtain PrBaMn(2)O(5+δ) Double Perovskite: Mechanochemical Synthesis

In this work, a mechanochemical route was proposed for the synthesis of the PrBaMn(2)O(5+δ) (PMBO) double layered perovskite phase. The mechanochemical reaction between Pr(6)O(11), BaO(2), and MnO powders with cationic stoichiometric ratios of 1/1/2 for Pr/Ba/Mn was performed using high-energy milli...

Descripción completa

Detalles Bibliográficos
Autores principales: Garcia-Garcia, Francisco J., Sayagués, María J., Gotor, Francisco J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7913101/
https://www.ncbi.nlm.nih.gov/pubmed/33540772
http://dx.doi.org/10.3390/nano11020380
_version_ 1783656727355326464
author Garcia-Garcia, Francisco J.
Sayagués, María J.
Gotor, Francisco J.
author_facet Garcia-Garcia, Francisco J.
Sayagués, María J.
Gotor, Francisco J.
author_sort Garcia-Garcia, Francisco J.
collection PubMed
description In this work, a mechanochemical route was proposed for the synthesis of the PrBaMn(2)O(5+δ) (PMBO) double layered perovskite phase. The mechanochemical reaction between Pr(6)O(11), BaO(2), and MnO powders with cationic stoichiometric ratios of 1/1/2 for Pr/Ba/Mn was performed using high-energy milling conditions in air. After 150 min of milling, a new phase with perovskite structure and cubic symmetry consistent with the A-site disordered Pr(0.5)Ba(0.5)MnO(3) phase was formed. When this new phase was subsequently annealed at a high temperature in an inert Ar atmosphere, the layered PrBaMn(2)O(5+δ) phase was obtained without needing to use a reducing atmosphere. At 1100 °C, the fully reduced layered PrBaMn(2)O(5) phase was achieved. A weight gain was observed in the 200–300 °C temperature range when this fully reduced phase was annealed in air, which was consistent with the transformation into the fully oxidized PrBaMn(2)O(6) phase. The microstructural characterization by SEM, TEM, and HRTEM ascertained the formation of the intended PrBaMn(2)O(5+δ) phase. Electrical characterization shows very high electrical conductivity of layered PBMO in a reducing atmosphere and suitable in an oxidizing atmosphere, becoming, therefore, excellent candidates as solid oxide fuel cell (SOFC electrodes).
format Online
Article
Text
id pubmed-7913101
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-79131012021-02-28 A Novel, Simple and Highly Efficient Route to Obtain PrBaMn(2)O(5+δ) Double Perovskite: Mechanochemical Synthesis Garcia-Garcia, Francisco J. Sayagués, María J. Gotor, Francisco J. Nanomaterials (Basel) Article In this work, a mechanochemical route was proposed for the synthesis of the PrBaMn(2)O(5+δ) (PMBO) double layered perovskite phase. The mechanochemical reaction between Pr(6)O(11), BaO(2), and MnO powders with cationic stoichiometric ratios of 1/1/2 for Pr/Ba/Mn was performed using high-energy milling conditions in air. After 150 min of milling, a new phase with perovskite structure and cubic symmetry consistent with the A-site disordered Pr(0.5)Ba(0.5)MnO(3) phase was formed. When this new phase was subsequently annealed at a high temperature in an inert Ar atmosphere, the layered PrBaMn(2)O(5+δ) phase was obtained without needing to use a reducing atmosphere. At 1100 °C, the fully reduced layered PrBaMn(2)O(5) phase was achieved. A weight gain was observed in the 200–300 °C temperature range when this fully reduced phase was annealed in air, which was consistent with the transformation into the fully oxidized PrBaMn(2)O(6) phase. The microstructural characterization by SEM, TEM, and HRTEM ascertained the formation of the intended PrBaMn(2)O(5+δ) phase. Electrical characterization shows very high electrical conductivity of layered PBMO in a reducing atmosphere and suitable in an oxidizing atmosphere, becoming, therefore, excellent candidates as solid oxide fuel cell (SOFC electrodes). MDPI 2021-02-02 /pmc/articles/PMC7913101/ /pubmed/33540772 http://dx.doi.org/10.3390/nano11020380 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Garcia-Garcia, Francisco J.
Sayagués, María J.
Gotor, Francisco J.
A Novel, Simple and Highly Efficient Route to Obtain PrBaMn(2)O(5+δ) Double Perovskite: Mechanochemical Synthesis
title A Novel, Simple and Highly Efficient Route to Obtain PrBaMn(2)O(5+δ) Double Perovskite: Mechanochemical Synthesis
title_full A Novel, Simple and Highly Efficient Route to Obtain PrBaMn(2)O(5+δ) Double Perovskite: Mechanochemical Synthesis
title_fullStr A Novel, Simple and Highly Efficient Route to Obtain PrBaMn(2)O(5+δ) Double Perovskite: Mechanochemical Synthesis
title_full_unstemmed A Novel, Simple and Highly Efficient Route to Obtain PrBaMn(2)O(5+δ) Double Perovskite: Mechanochemical Synthesis
title_short A Novel, Simple and Highly Efficient Route to Obtain PrBaMn(2)O(5+δ) Double Perovskite: Mechanochemical Synthesis
title_sort novel, simple and highly efficient route to obtain prbamn(2)o(5+δ) double perovskite: mechanochemical synthesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7913101/
https://www.ncbi.nlm.nih.gov/pubmed/33540772
http://dx.doi.org/10.3390/nano11020380
work_keys_str_mv AT garciagarciafranciscoj anovelsimpleandhighlyefficientroutetoobtainprbamn2o5ddoubleperovskitemechanochemicalsynthesis
AT sayaguesmariaj anovelsimpleandhighlyefficientroutetoobtainprbamn2o5ddoubleperovskitemechanochemicalsynthesis
AT gotorfranciscoj anovelsimpleandhighlyefficientroutetoobtainprbamn2o5ddoubleperovskitemechanochemicalsynthesis
AT garciagarciafranciscoj novelsimpleandhighlyefficientroutetoobtainprbamn2o5ddoubleperovskitemechanochemicalsynthesis
AT sayaguesmariaj novelsimpleandhighlyefficientroutetoobtainprbamn2o5ddoubleperovskitemechanochemicalsynthesis
AT gotorfranciscoj novelsimpleandhighlyefficientroutetoobtainprbamn2o5ddoubleperovskitemechanochemicalsynthesis