Effect of Magnetic Field and Hydrostatic Pressure on Metamagnetic Isostructural Phase Transition and Multicaloric Response of Fe49Rh51 Alloy

Author:

Kamantsev Alexander P.1ORCID,Amirov Abdulkarim A.2ORCID,Zaporozhets Vladislav D.3,Gribanov Igor F.3,Golovchan Aleksay V.3,Valkov Victor I.3,Pavlukhina Oksana O.4,Sokolovskiy Vladimir V.45ORCID,Buchelnikov Vasiliy D.4,Aliev Akhmed M.2,Koledov Victor V.1

Affiliation:

1. Kotelnikov Institute of Radioengineering and Electronics of Russian Academy of Sciences, 125009 Moscow, Russia

2. Amirkhanov Institute of Physics, Dagestan Scientific Center of Russian Academy of Sciences, 367003 Makhachkala, Russia

3. Galkin Donetsk Institute for Physics and Engineering, 283050 Donetsk, Russia

4. Department of Condensed Matter Physics, Chelyabinsk State University, 454001 Chelyabinsk, Russia

5. Academic Research Center for Energy Efficiency, National University of Science and Technology “MISIS”, 119049 Moscow, Russia

Abstract

The effect of a high magnetic field up to 12 T and a high hydrostatic pressure up to 12 kbar on the stability of the metamagnetic isostructural phase transition and the multicaloric effect of Fe49Rh51 alloy has been studied. The phase transition temperature shifts under the magnetic field and the hydrostatic pressure on with the rates of dTm/μ0dH = −9.2 K/T and dTm/dP = 3.4 K/kbar, respectively. The magnetocaloric and multicaloric (under two external fields) effects were studied via indirect method using Maxwell relations. The maximum of the entropy change is increasing toward the high temperature region from ∆S~2.5 J/(kg K) at 305 K to ∆S~2.7 J/(kg K) at 344 K under simultaneously applied magnetic field of 0.97 T and hydrostatic pressure of 12 kbar. The obtained results were explained using the first-principle calculations of Gibbs energies and the phonon spectra of the ferromagnetic and the antiferromagnetic phases. Taking into account the low concentration of antisite defects in the calculation cells allows us to reproduce the experimental dTm/dP coefficient.

Funder

Priority-2030 Program of NUST “MISiS”

Ministry of Science and Higher Education of the Russian Federation

Publisher

MDPI AG

Subject

General Materials Science,Metals and Alloys

Reference56 articles.

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