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Magnetocaloric Effect and Critical Behavior Investigations in La{sub 0.45}Pr{sub 0.2}Sr{sub 0.35}MnO{sub 3} Manganite Oxide
Structural, magnetic, and magnetocaloric effect (MCE) properties and the critical behavior of the La{sub 0.45}Pr{sub 0.2}Sr{sub 0.35}MnO{sub 3} sample prepared by the sol–gel method have been investigated. The X-ray diffraction characterization reveals that our sample crystallizes in the orthorhombi...
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Published in: | Journal of superconductivity and novel magnetism 2019-05, Vol.32 (5) |
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container_title | Journal of superconductivity and novel magnetism |
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creator | Amama, N. Omrani, H. Cheikhrouhou Koubaa, Wissem Koubaa, Mohamed Cheikhrouhou, Abdelwaheb |
description | Structural, magnetic, and magnetocaloric effect (MCE) properties and the critical behavior of the La{sub 0.45}Pr{sub 0.2}Sr{sub 0.35}MnO{sub 3} sample prepared by the sol–gel method have been investigated. The X-ray diffraction characterization reveals that our sample crystallizes in the orthorhombic structure with Pnma space group. Magnetization versus temperature measurement shows that our compound exhibits a ferromagnetic–paramagnetic transition. The Curie temperature is found to be 348 K. Close to this temperature, the maximum values of the magnetic entropy change (ΔS{sub M}) and the relative cooling power (RCP) are found to be 2.84 J/kg/K and 230 J/K under µ{sub 0}H = 5 T, respectively. The Arrott plots revealed that this compound exhibits a second-order magnetic phase transition at T{sub C}. The critical behavior has been investigated by several techniques which are the modified Arrott plot method, the Kouvel–Fisher method, and the critical isotherm analysis. The obtained critical exponents β, γ, and δ are consistent with those predictions of the mean-field model. Their reliability was confirmed by Widom’s scaling relation, as well as the universal scaling hypothesis. |
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The X-ray diffraction characterization reveals that our sample crystallizes in the orthorhombic structure with Pnma space group. Magnetization versus temperature measurement shows that our compound exhibits a ferromagnetic–paramagnetic transition. The Curie temperature is found to be 348 K. Close to this temperature, the maximum values of the magnetic entropy change (ΔS{sub M}) and the relative cooling power (RCP) are found to be 2.84 J/kg/K and 230 J/K under µ{sub 0}H = 5 T, respectively. The Arrott plots revealed that this compound exhibits a second-order magnetic phase transition at T{sub C}. The critical behavior has been investigated by several techniques which are the modified Arrott plot method, the Kouvel–Fisher method, and the critical isotherm analysis. The obtained critical exponents β, γ, and δ are consistent with those predictions of the mean-field model. Their reliability was confirmed by Widom’s scaling relation, as well as the universal scaling hypothesis.</description><identifier>ISSN: 1557-1939</identifier><identifier>EISSN: 1557-1947</identifier><language>eng</language><publisher>United States</publisher><subject>CALORIMETRY ; CURIE POINT ; ENTROPY ; LANTHANUM COMPOUNDS ; MAGNETIC PROPERTIES ; MAGNETIZATION ; MANGANATES ; MATERIALS SCIENCE ; MEAN-FIELD THEORY ; ORTHORHOMBIC LATTICES ; PARAMAGNETISM ; PHASE TRANSFORMATIONS ; PRASEODYMIUM COMPOUNDS ; SOL-GEL PROCESS ; SPACE GROUPS ; STRONTIUM COMPOUNDS ; TEMPERATURE MEASUREMENT ; X-RAY DIFFRACTION</subject><ispartof>Journal of superconductivity and novel magnetism, 2019-05, Vol.32 (5)</ispartof><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>230,314,776,780,881</link.rule.ids><backlink>$$Uhttps://www.osti.gov/biblio/22921280$$D View this record in Osti.gov$$Hfree_for_read</backlink></links><search><creatorcontrib>Amama, N.</creatorcontrib><creatorcontrib>Omrani, H.</creatorcontrib><creatorcontrib>Cheikhrouhou Koubaa, Wissem</creatorcontrib><creatorcontrib>Koubaa, Mohamed</creatorcontrib><creatorcontrib>Cheikhrouhou, Abdelwaheb</creatorcontrib><title>Magnetocaloric Effect and Critical Behavior Investigations in La{sub 0.45}Pr{sub 0.2}Sr{sub 0.35}MnO{sub 3} Manganite Oxide</title><title>Journal of superconductivity and novel magnetism</title><description>Structural, magnetic, and magnetocaloric effect (MCE) properties and the critical behavior of the La{sub 0.45}Pr{sub 0.2}Sr{sub 0.35}MnO{sub 3} sample prepared by the sol–gel method have been investigated. The X-ray diffraction characterization reveals that our sample crystallizes in the orthorhombic structure with Pnma space group. Magnetization versus temperature measurement shows that our compound exhibits a ferromagnetic–paramagnetic transition. The Curie temperature is found to be 348 K. Close to this temperature, the maximum values of the magnetic entropy change (ΔS{sub M}) and the relative cooling power (RCP) are found to be 2.84 J/kg/K and 230 J/K under µ{sub 0}H = 5 T, respectively. The Arrott plots revealed that this compound exhibits a second-order magnetic phase transition at T{sub C}. The critical behavior has been investigated by several techniques which are the modified Arrott plot method, the Kouvel–Fisher method, and the critical isotherm analysis. The obtained critical exponents β, γ, and δ are consistent with those predictions of the mean-field model. 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The X-ray diffraction characterization reveals that our sample crystallizes in the orthorhombic structure with Pnma space group. Magnetization versus temperature measurement shows that our compound exhibits a ferromagnetic–paramagnetic transition. The Curie temperature is found to be 348 K. Close to this temperature, the maximum values of the magnetic entropy change (ΔS{sub M}) and the relative cooling power (RCP) are found to be 2.84 J/kg/K and 230 J/K under µ{sub 0}H = 5 T, respectively. The Arrott plots revealed that this compound exhibits a second-order magnetic phase transition at T{sub C}. The critical behavior has been investigated by several techniques which are the modified Arrott plot method, the Kouvel–Fisher method, and the critical isotherm analysis. The obtained critical exponents β, γ, and δ are consistent with those predictions of the mean-field model. Their reliability was confirmed by Widom’s scaling relation, as well as the universal scaling hypothesis.</abstract><cop>United States</cop></addata></record> |
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subjects | CALORIMETRY CURIE POINT ENTROPY LANTHANUM COMPOUNDS MAGNETIC PROPERTIES MAGNETIZATION MANGANATES MATERIALS SCIENCE MEAN-FIELD THEORY ORTHORHOMBIC LATTICES PARAMAGNETISM PHASE TRANSFORMATIONS PRASEODYMIUM COMPOUNDS SOL-GEL PROCESS SPACE GROUPS STRONTIUM COMPOUNDS TEMPERATURE MEASUREMENT X-RAY DIFFRACTION |
title | Magnetocaloric Effect and Critical Behavior Investigations in La{sub 0.45}Pr{sub 0.2}Sr{sub 0.35}MnO{sub 3} Manganite Oxide |
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