Anomalous Behavior of Electronic Heat Capacity of Strongly Correlated Iron Monosilicide
- Authors: Povzner А.А.1, Volkov A.G.1, Nogovitsyna T.A.1
-
Affiliations:
- Ural Federal University
- Issue: Vol 60, No 12 (2018)
- Pages: 2130-2135
- Section: Article
- URL: https://ogarev-online.ru/1064-8887/article/view/239835
- DOI: https://doi.org/10.1007/s11182-018-1336-3
- ID: 239835
Cite item
Abstract
The paper deals with the electronic heat capacity of iron monosilicide FeSi subjected to semiconductor–metal thermal transition during which the formation of its spintronic properties is observed. The proposed model which considers pd-hybridization of strongly correlated d-electrons with non-correlated p-electrons, demonstrates a connection of their contribution to heat capacity in the insulator phase with paramagnon effects and fluctuations of occupation numbers for p- and d-states. In a slitless state, the temperature curve of heat capacity is characterized by a maximum appeared due to normalization of the electron density of states using fluctuating exchange fields. At higher temperatures, a linear growth in heat capacity occurs due to paramagnon effects. The correlation between the model parameters and the first-principles calculation provides the electron contribution to heat capacity, which is obtained from the experimental results on phonon heat capacity. Anharmonicity of phonons is connected merely with the thermal expansion of the crystal lattice.
About the authors
А. А. Povzner
Ural Federal University
Author for correspondence.
Email: a.a.povzner@urfu.ru
Russian Federation, Ekaterinburg
A. G. Volkov
Ural Federal University
Author for correspondence.
Email: a.g.volkov@urfu.ru
Russian Federation, Ekaterinburg
T. A. Nogovitsyna
Ural Federal University
Email: a.g.volkov@urfu.ru
Russian Federation, Ekaterinburg
Supplementary files
