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High-temperature anti-Invar behavior ofγ-Fe precipitates inFexCu100xsolid solutions: Ferromagnetic phases
Author(s) -
S. L. Palacios,
R. Iglesias,
David MartínezBlanco,
P. Gorría,
M.J. Pérez,
J.A. Blanco,
A. Hernando,
Karlheinz Schwarz
Publication year - 2005
Publication title -
physical review b
Language(s) - English
Resource type - Journals
eISSN - 1538-4489
pISSN - 1098-0121
DOI - 10.1103/physrevb.72.172401
Subject(s) - invar , ferromagnetism , metastability , physics , spin glass , condensed matter physics , ground state , energy (signal processing) , neutron diffraction , materials science , thermodynamics , crystallography , thermal expansion , quantum mechanics , diffraction , chemistry
High-temperature magnetization and neutron diffraction measurements on metastable Fe_xCu_(100-x) solid solutions have recently shown to imply that γ-Fe precipitates present ferromagnetic anti-Invar behavior. For this reason, we have studied the ferromagnetic phases of γ-Fe in moment-volume parameter space, using the general potential linearized-augmented plane-wave method and the fixed spin moment procedure in order to calculate the corresponding total energy. We find that only two ferromagnetic phases (one related to a low- spin state and the other to a high-spin state) can exist and even coexist in limited volume ranges (3.55-3.59 Å). Hence, our results provide a "revisited" version of the local spin density calculations used in the early article by Moruzzi [Phys. Rev. B 34, 1784 (1986)]. In addition, the fixed spin moment method-using an energy-moment-volume space representation-allows us to conclude that the high-spin state is the ground state of the gamma-Fe precipitates, as the anti-Invar behavior is an intrinsic property of these states. This simple scenario seems to adequately describe the perplexing phenomenology recently observed on Fe_xCu_(100-x) solid solutions

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