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Electronic, magnetic, and thermoelec...
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Masrour, Rachid.
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Electronic, magnetic, and thermoelectric properties of spinel ferrite systems = a monte carlo study, mean-field theory, high-temperature series expansions, and ab-initio calculations /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Electronic, magnetic, and thermoelectric properties of spinel ferrite systems/ by Rachid Masrour.
Reminder of title:
a monte carlo study, mean-field theory, high-temperature series expansions, and ab-initio calculations /
Author:
Masrour, Rachid.
Published:
Cham :Springer Nature Switzerland : : 2023.,
Description:
xiv, 128 p. :ill., digital ;24 cm.
[NT 15003449]:
Exchange interactions types in magnetic materials -- Computational methods: Ab Initio calculations and Monte Carlo simulations -- Thermoelectric and spin-lattice coupling in a MnCr2S4 ferrimagnetic spinel -- Magnetic properties of LiMn1.5Ni0.5O4 spinel: Ab initio calculations and Monte Carlo simulation.
Contained By:
Springer Nature eBook
Subject:
Metals - Magnetic properties. -
Online resource:
https://doi.org/10.1007/978-3-031-40613-3
ISBN:
9783031406133
Electronic, magnetic, and thermoelectric properties of spinel ferrite systems = a monte carlo study, mean-field theory, high-temperature series expansions, and ab-initio calculations /
Masrour, Rachid.
Electronic, magnetic, and thermoelectric properties of spinel ferrite systems
a monte carlo study, mean-field theory, high-temperature series expansions, and ab-initio calculations /[electronic resource] :by Rachid Masrour. - Cham :Springer Nature Switzerland :2023. - xiv, 128 p. :ill., digital ;24 cm. - SpringerBriefs in materials,2192-1105. - SpringerBriefs in materials..
Exchange interactions types in magnetic materials -- Computational methods: Ab Initio calculations and Monte Carlo simulations -- Thermoelectric and spin-lattice coupling in a MnCr2S4 ferrimagnetic spinel -- Magnetic properties of LiMn1.5Ni0.5O4 spinel: Ab initio calculations and Monte Carlo simulation.
This book explores magnetic properties and critical temperatures in inverse ferrite Fe₃⁺(M₂⁺Fe₃⁺)O₄ spinels (e.g., Fe, Co, Ni) It calculates transition and Curie Weiss temperatures, providing insights into their thermodynamic behavior. Using the full potential linearized augmented plane wave (FP-LAPW) method, it investigates electrical and magnetic structures of spinel chromite, revealing magnetic moments in MnCr₂S₄. Seebeck coefficient and electrical conductivity are also calculated. Advanced techniques like Monte Carlo, DFT+U, and FLAPW analyze magnetic characteristics of LiMn₁.₅Ni₀.₅O₄ and electronic/magnetic structures of Fe₃O₄. High-temperature series expansions calculate Néel temperature and critical exponents, while GFT determines thermal magnetization and susceptibility. The analysis exposes exchange interactions' effects on magnetic order and introduces asymmetric phases in ferrimagnetic spinel systems. This book serves as an invaluable resource for researchers, academics, and enthusiasts seeking a comprehensive understanding of magnetic properties and critical phenomena within diverse spinel materials.
ISBN: 9783031406133
Standard No.: 10.1007/978-3-031-40613-3doiSubjects--Topical Terms:
653699
Metals
--Magnetic properties.
LC Class. No.: QC176.8.M3
Dewey Class. No.: 620.1697
Electronic, magnetic, and thermoelectric properties of spinel ferrite systems = a monte carlo study, mean-field theory, high-temperature series expansions, and ab-initio calculations /
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Exchange interactions types in magnetic materials -- Computational methods: Ab Initio calculations and Monte Carlo simulations -- Thermoelectric and spin-lattice coupling in a MnCr2S4 ferrimagnetic spinel -- Magnetic properties of LiMn1.5Ni0.5O4 spinel: Ab initio calculations and Monte Carlo simulation.
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This book explores magnetic properties and critical temperatures in inverse ferrite Fe₃⁺(M₂⁺Fe₃⁺)O₄ spinels (e.g., Fe, Co, Ni) It calculates transition and Curie Weiss temperatures, providing insights into their thermodynamic behavior. Using the full potential linearized augmented plane wave (FP-LAPW) method, it investigates electrical and magnetic structures of spinel chromite, revealing magnetic moments in MnCr₂S₄. Seebeck coefficient and electrical conductivity are also calculated. Advanced techniques like Monte Carlo, DFT+U, and FLAPW analyze magnetic characteristics of LiMn₁.₅Ni₀.₅O₄ and electronic/magnetic structures of Fe₃O₄. High-temperature series expansions calculate Néel temperature and critical exponents, while GFT determines thermal magnetization and susceptibility. The analysis exposes exchange interactions' effects on magnetic order and introduces asymmetric phases in ferrimagnetic spinel systems. This book serves as an invaluable resource for researchers, academics, and enthusiasts seeking a comprehensive understanding of magnetic properties and critical phenomena within diverse spinel materials.
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Chemistry and Materials Science (SpringerNature-11644)
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