Sequence of phase transformations at the formation of the strontium chrome-molybdate compound

The sequence of phase transformations in the process of crystallization of the Sr2CrMoO6 by the solid-phase technique from a stoichiometric mixture of simple oxides SrCO3 + 0.5Cr2O3 + MoO, has been investigated. It was determined that the synthesis of the strontium chrome-molybdate proceeds through...

Full description

Bibliographic Details
Main Authors: N. A. Kalanda, A. L. Gurskii, M. V. Yarmolich, A. V. Petrov, I. A. Bobrikov, O. Yu. Ivanshina, S. V. Sumnikov, F. Maia, A. L. Zhaludkevich, S. E. Demyanov
Format: Article
Language:English
Published: Pensoft Publishers 2019-06-01
Series:Modern Electronic Materials
Online Access:https://moem.pensoft.net/article/50758/download/pdf/
_version_ 1797723024356540416
author N. A. Kalanda
A. L. Gurskii
M. V. Yarmolich
A. V. Petrov
I. A. Bobrikov
O. Yu. Ivanshina
S. V. Sumnikov
F. Maia
A. L. Zhaludkevich
S. E. Demyanov
author_facet N. A. Kalanda
A. L. Gurskii
M. V. Yarmolich
A. V. Petrov
I. A. Bobrikov
O. Yu. Ivanshina
S. V. Sumnikov
F. Maia
A. L. Zhaludkevich
S. E. Demyanov
author_sort N. A. Kalanda
collection DOAJ
description The sequence of phase transformations in the process of crystallization of the Sr2CrMoO6 by the solid-phase technique from a stoichiometric mixture of simple oxides SrCO3 + 0.5Cr2O3 + MoO, has been investigated. It was determined that the synthesis of the strontium chrome-molybdate proceeds through a series of sequential-parallel stages. By means of the differential thermal analysis and thermogravimetric analysis data, it has been established that five clearly expressed endothermal effects were observed in the temperature range 300−1300 K. It was found that during the studies of the phase transformations sequence in the process of the double perovskite synthesis, SrCrO3, SrMoO4 and Sr2CrO4 are the main concomitant compounds. Herewith, it has been observed that with the annealing temperature increase from 300 to 1270 K, the complex compounds SrCrO4, SrCrO3 (350−550 К) and SrMoO4, Sr2CrO4 (600−750 К) are emerging initially and practically simultaneously. It has been revealed with a subsequent temperature increase that in the temperature range 940−1100 К, the SrMoO4, Sr2CrO4 and SrCrO3 phase concentration dramatically drops with the emerging and growth of the Sr2CrMoO6-δ double perovskite. With that in the range up to 1120–1190 К, the main XRD reflexes intensity for the SrCrO3 and SrMoO4 lowers substantially, and their content in the samples at 1170 К is no more than 7.9%. During a consideration of the derivative of the SrCrO3, SrMoO4 and Sr2CrO4 phase transformation degree (|(dα/dt)|mах), at which their crystallization rates are maximal, it has been determined that |(dα/dt)|mах for the Sr2CrO4 corresponds to the maximal temperature 1045 К, which indicates the presence of considerable kinetic difficulties at the formation of the Sr2CrO4 phase. Thereafter this phase does not disappear and at its appearance the slowing down of the double perovskite growth takes place. On the base of investigations of the phase transformations dynamics for the obtaining of the single-phase Sr2CrMoO6-δ compound with the superstructural ordering of the Cr/Mo cations and improved magnetic characteristics, the SrCrO3 and SrMoO4 precursors were used with combined heating modes.
first_indexed 2024-03-12T09:57:11Z
format Article
id doaj.art-2ad1132012ca4381be7e67b2357d26bd
institution Directory Open Access Journal
issn 2452-1779
language English
last_indexed 2024-03-12T09:57:11Z
publishDate 2019-06-01
publisher Pensoft Publishers
record_format Article
series Modern Electronic Materials
spelling doaj.art-2ad1132012ca4381be7e67b2357d26bd2023-09-02T12:04:40ZengPensoft PublishersModern Electronic Materials2452-17792019-06-0152697510.3897/j.moem.5.2.5075850758Sequence of phase transformations at the formation of the strontium chrome-molybdate compoundN. A. Kalanda0A. L. Gurskii1M. V. Yarmolich2A. V. Petrov3I. A. Bobrikov4O. Yu. Ivanshina5S. V. Sumnikov6F. Maia7A. L. Zhaludkevich8S. E. Demyanov9Scientific-Practical Materials Research Centre of the NAS of BelarusBelarusian State University of Informatics and RadioelectronicsScientific-Practical Materials Research Centre of the NAS of BelarusScientific-Practical Materials Research Centre of the NAS of BelarusI.M. Frank Laboratory of Neutron Physics, Joint Institute for Nuclear ResearchI.M. Frank Laboratory of Neutron Physics, Joint Institute for Nuclear ResearchI.M. Frank Laboratory of Neutron Physics, Joint Institute for Nuclear ResearchSmallmatek − Small Materials and Technologies, Lda.Scientific-Practical Materials Research Centre of the NAS of BelarusScientific-Practical Materials Research Centre of the NAS of BelarusThe sequence of phase transformations in the process of crystallization of the Sr2CrMoO6 by the solid-phase technique from a stoichiometric mixture of simple oxides SrCO3 + 0.5Cr2O3 + MoO, has been investigated. It was determined that the synthesis of the strontium chrome-molybdate proceeds through a series of sequential-parallel stages. By means of the differential thermal analysis and thermogravimetric analysis data, it has been established that five clearly expressed endothermal effects were observed in the temperature range 300−1300 K. It was found that during the studies of the phase transformations sequence in the process of the double perovskite synthesis, SrCrO3, SrMoO4 and Sr2CrO4 are the main concomitant compounds. Herewith, it has been observed that with the annealing temperature increase from 300 to 1270 K, the complex compounds SrCrO4, SrCrO3 (350−550 К) and SrMoO4, Sr2CrO4 (600−750 К) are emerging initially and practically simultaneously. It has been revealed with a subsequent temperature increase that in the temperature range 940−1100 К, the SrMoO4, Sr2CrO4 and SrCrO3 phase concentration dramatically drops with the emerging and growth of the Sr2CrMoO6-δ double perovskite. With that in the range up to 1120–1190 К, the main XRD reflexes intensity for the SrCrO3 and SrMoO4 lowers substantially, and their content in the samples at 1170 К is no more than 7.9%. During a consideration of the derivative of the SrCrO3, SrMoO4 and Sr2CrO4 phase transformation degree (|(dα/dt)|mах), at which their crystallization rates are maximal, it has been determined that |(dα/dt)|mах for the Sr2CrO4 corresponds to the maximal temperature 1045 К, which indicates the presence of considerable kinetic difficulties at the formation of the Sr2CrO4 phase. Thereafter this phase does not disappear and at its appearance the slowing down of the double perovskite growth takes place. On the base of investigations of the phase transformations dynamics for the obtaining of the single-phase Sr2CrMoO6-δ compound with the superstructural ordering of the Cr/Mo cations and improved magnetic characteristics, the SrCrO3 and SrMoO4 precursors were used with combined heating modes.https://moem.pensoft.net/article/50758/download/pdf/
spellingShingle N. A. Kalanda
A. L. Gurskii
M. V. Yarmolich
A. V. Petrov
I. A. Bobrikov
O. Yu. Ivanshina
S. V. Sumnikov
F. Maia
A. L. Zhaludkevich
S. E. Demyanov
Sequence of phase transformations at the formation of the strontium chrome-molybdate compound
Modern Electronic Materials
title Sequence of phase transformations at the formation of the strontium chrome-molybdate compound
title_full Sequence of phase transformations at the formation of the strontium chrome-molybdate compound
title_fullStr Sequence of phase transformations at the formation of the strontium chrome-molybdate compound
title_full_unstemmed Sequence of phase transformations at the formation of the strontium chrome-molybdate compound
title_short Sequence of phase transformations at the formation of the strontium chrome-molybdate compound
title_sort sequence of phase transformations at the formation of the strontium chrome molybdate compound
url https://moem.pensoft.net/article/50758/download/pdf/
work_keys_str_mv AT nakalanda sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT algurskii sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT mvyarmolich sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT avpetrov sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT iabobrikov sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT oyuivanshina sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT svsumnikov sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT fmaia sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT alzhaludkevich sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound
AT sedemyanov sequenceofphasetransformationsattheformationofthestrontiumchromemolybdatecompound