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Titlebook: Magnetoelectronic, Optical, and Thermoelectric Properties of Perovskite Materials; Rachid Masrour Book 2024 The Editor(s) (if applicable)

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Calculation Methods: Monte Carlo Simulations and Ab Initio Calculations,lculations have been given. The several approximations such as: Born–Oppenheimer Approximation, Hartree Approximation, Hartree–Fock Approximation, density functional theory, theorems of Hohenberg and Kohn, Formulation of Kohn–Sham, locale density of approximation and generalized gradient approximati
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Study of Magnetocaloric Effect, Electronic and Magnetic Properties of Perovskite Ferrites,ns to investigate the magnetocaloric, electronic, and magnetic properties of the perovskite oxide Ba.Sr.FeO., where x ranged from 0 to 0.2. Our study incorporated various computational approaches, including spin polarization within the generalized gradient approximation (GGA), Hubbard approximation
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Magnetic Properties and Magnetocaloric in Double Perovskite Oxides,M/dT of Sr.FeMoO. are investigated. The transition temperature and lock-in-transition temperatures are deduced. The temperature dependence of the magnetic entropy and of the adiabatic temperature for a several magnetic fields have been also obtained. The field dependence of relative cooling power an
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Magnetocaloric and Magnetic Properties of Bilayer Manganite,em was investigated. We have given the dM/dT as a function of temperatures to find the transitions temperatures. The magnetic transition from ferromagnetic to paramagnetic is found. The second.order phase transition is found at the transition temperature. The temperature dependence of the magnetic e
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Effect of Magnetic Field on the Magnetocaloric and Magnetic Properties of Perovskite Orthoferrites, is found and shows that the Néel temperature of the weak-ferromagnetic SmFeO. decreases as Fe ions are substituted by Mn ions. A paramagnetic-to-weak-antiferromagnetic transition with decreasing the temperature is observed and the corresponding Néel temperature essentially decreases as the Mn conte
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