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Impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of Nd(0.6)Sr(0.4)MnO(3) manganite

Nd(0.6)Sr(0.4)MnO(3) polycrystalline manganite was synthesized by two different methods: the auto-combustion reaction (NSMO-AC) and the sol–gel method (NSMO-SG). The structural, magnetic, magnetocaloric and critical behavior of the samples were examined. Rietveld refinements of the XRD patterns reve...

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Autores principales: Jeddi, M., Massoudi, J., Gharsallah, H., Ahmed, Sameh I., Dhahri, E., Hlil, E. K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8694946/
https://www.ncbi.nlm.nih.gov/pubmed/35423281
http://dx.doi.org/10.1039/d0ra10118d
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author Jeddi, M.
Massoudi, J.
Gharsallah, H.
Ahmed, Sameh I.
Dhahri, E.
Hlil, E. K.
author_facet Jeddi, M.
Massoudi, J.
Gharsallah, H.
Ahmed, Sameh I.
Dhahri, E.
Hlil, E. K.
author_sort Jeddi, M.
collection PubMed
description Nd(0.6)Sr(0.4)MnO(3) polycrystalline manganite was synthesized by two different methods: the auto-combustion reaction (NSMO-AC) and the sol–gel method (NSMO-SG). The structural, magnetic, magnetocaloric and critical behavior of the samples were examined. Rietveld refinements of the XRD patterns revealed that both compounds are pure single phase indexed to the orthorhombic system adopting the Pnma space group. The nanometric size estimated using the Williamson–Hall method was confirmed by TEM micrographs. Magnetic measurements as a function of temperature indicated that both samples underwent a second order ferromagnetic (FM)–paramagnetic (PM) phase transition at Curie temperature (T(C)). The relative cooling power was observed to be around 95.271 J kg(−1) for NSMO-AC and 202.054 J kg(−1) for NSMO-SG at μ(0)H = 5 T, indicating that these materials are potential candidates for magnetic refrigeration application close to room temperature. The critical behavior was estimated using diverse techniques based on the isothermal magnetization data recorded around the critical temperature T(C). The calculated values are fully satisfactory to the requirements of the scaling theory, implying their reliability. The estimated critical exponents matched well with the values anticipated for the mean-field model and the 3D Ising model for NSMO-AC and NSMO-SG, respectively, showing that the magnetic interactions depended on the process of elaboration.
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spelling pubmed-86949462022-04-13 Impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of Nd(0.6)Sr(0.4)MnO(3) manganite Jeddi, M. Massoudi, J. Gharsallah, H. Ahmed, Sameh I. Dhahri, E. Hlil, E. K. RSC Adv Chemistry Nd(0.6)Sr(0.4)MnO(3) polycrystalline manganite was synthesized by two different methods: the auto-combustion reaction (NSMO-AC) and the sol–gel method (NSMO-SG). The structural, magnetic, magnetocaloric and critical behavior of the samples were examined. Rietveld refinements of the XRD patterns revealed that both compounds are pure single phase indexed to the orthorhombic system adopting the Pnma space group. The nanometric size estimated using the Williamson–Hall method was confirmed by TEM micrographs. Magnetic measurements as a function of temperature indicated that both samples underwent a second order ferromagnetic (FM)–paramagnetic (PM) phase transition at Curie temperature (T(C)). The relative cooling power was observed to be around 95.271 J kg(−1) for NSMO-AC and 202.054 J kg(−1) for NSMO-SG at μ(0)H = 5 T, indicating that these materials are potential candidates for magnetic refrigeration application close to room temperature. The critical behavior was estimated using diverse techniques based on the isothermal magnetization data recorded around the critical temperature T(C). The calculated values are fully satisfactory to the requirements of the scaling theory, implying their reliability. The estimated critical exponents matched well with the values anticipated for the mean-field model and the 3D Ising model for NSMO-AC and NSMO-SG, respectively, showing that the magnetic interactions depended on the process of elaboration. The Royal Society of Chemistry 2021-02-11 /pmc/articles/PMC8694946/ /pubmed/35423281 http://dx.doi.org/10.1039/d0ra10118d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Jeddi, M.
Massoudi, J.
Gharsallah, H.
Ahmed, Sameh I.
Dhahri, E.
Hlil, E. K.
Impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of Nd(0.6)Sr(0.4)MnO(3) manganite
title Impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of Nd(0.6)Sr(0.4)MnO(3) manganite
title_full Impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of Nd(0.6)Sr(0.4)MnO(3) manganite
title_fullStr Impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of Nd(0.6)Sr(0.4)MnO(3) manganite
title_full_unstemmed Impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of Nd(0.6)Sr(0.4)MnO(3) manganite
title_short Impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of Nd(0.6)Sr(0.4)MnO(3) manganite
title_sort impact of synthesis route on structural, magnetic, magnetocaloric and critical behavior of nd(0.6)sr(0.4)mno(3) manganite
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8694946/
https://www.ncbi.nlm.nih.gov/pubmed/35423281
http://dx.doi.org/10.1039/d0ra10118d
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