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Influence of magnetic fluctuations in the magnetocaloric effect on rare-earth intermetallic compounds

Author:
Álvarez Alonso, PabloUniovi authority; Gorría Korres, PedroUniovi authority; Blanco Rodríguez, Jesús ÁngelUniovi authority
Publication date:
2011
Editorial:

American Physical Society Journals

Publisher version:
http://dx.doi.org/10.1103/PhysRevB.84.024412
Citación:
Physical Review B, 84(2), 024412 (2011); doi:10.1103/PhysRevB.84.024412
Abstract:

A theoretical model including both crystal-field and exchange interactions that considers the effect of magnetic fluctuations is developed to evaluate the temperature dependence of the isothermal magnetic entropy changes in ferromagnetic rare-earth-based intermetallic compounds. The Green’s functions are derived from their equation of motion. The magnetic moment correlation functions are determined beyond the random phase approximation by incorporating a measure of magnetic spontaneous fluctuations in a way that ensures self-consistency with regard to the fluctuation-dissipation theorem. In particular, the exact magnitude of the entropy change without magnetic moment fluctuations depends on the ratio of both the crystal-field first- and the crystal-field third-order magnetic susceptibilities at the Curie temperature, TC. These theoretical predictions are compared with experimental data on cubic RM2 (R = rare earth and M = Al and Ni) compounds, where the principal crystal-field and exchange parameters are well known.

A theoretical model including both crystal-field and exchange interactions that considers the effect of magnetic fluctuations is developed to evaluate the temperature dependence of the isothermal magnetic entropy changes in ferromagnetic rare-earth-based intermetallic compounds. The Green’s functions are derived from their equation of motion. The magnetic moment correlation functions are determined beyond the random phase approximation by incorporating a measure of magnetic spontaneous fluctuations in a way that ensures self-consistency with regard to the fluctuation-dissipation theorem. In particular, the exact magnitude of the entropy change without magnetic moment fluctuations depends on the ratio of both the crystal-field first- and the crystal-field third-order magnetic susceptibilities at the Curie temperature, TC. These theoretical predictions are compared with experimental data on cubic RM2 (R = rare earth and M = Al and Ni) compounds, where the principal crystal-field and exchange parameters are well known.

URI:
http://hdl.handle.net/10651/6121
ISSN:
1098-0121
DOI:
10.1103/PhysRevB.84.024412
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