2015
DOI: 10.1103/physrevb.91.224421
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Magnetocaloric and barocaloric responses in magnetovolumic systems

Abstract: By means of a mean-field model extended to include magnetovolumic effects, we study the effect of external fields on the thermal response characterized either by the isothermal entropy change and/or the adiabatic temperature change. The model includes two different situations induced by the magnetovolumic coupling: (i) a first-order paramagnetic-to-ferromagnetic phase transition that entails a volume change; (ii) an inversion of the effective exchange interaction that promotes the occurrence of an antiferromag… Show more

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Cited by 13 publications
(19 citation statements)
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“…These values are significantly larger than those reported (or estimated) for other barocaloric materials [13,[21][22][23][24]. It is also worth noting that upon pressure cycling |∆T | remain at a relative large value of ∼ 4 K over a temperature span of ∼ 10 K. Recently, the magnetocaloric and barocaloric effects in caloric materials have been studied by means of a meanfield model which includes magnetovolumic effects [11]. The model has been applied to the specific case of FeRh and the predicted adiabatic temperature changes are in qualitative agreement with present experimental data.…”
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confidence: 83%
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“…These values are significantly larger than those reported (or estimated) for other barocaloric materials [13,[21][22][23][24]. It is also worth noting that upon pressure cycling |∆T | remain at a relative large value of ∼ 4 K over a temperature span of ∼ 10 K. Recently, the magnetocaloric and barocaloric effects in caloric materials have been studied by means of a meanfield model which includes magnetovolumic effects [11]. The model has been applied to the specific case of FeRh and the predicted adiabatic temperature changes are in qualitative agreement with present experimental data.…”
mentioning
confidence: 83%
“…In the recent years, however, there has been a renewed interest in the study of Fe-Rh [5][6][7][8][9][10][11]. On the one hand, it has been evidenced that in accurately prepared samples, the entropy change associated with the magnetocaloric effect exhibits good reproducibility upon magnetic field cycling [10,12].…”
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confidence: 99%
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“…49 As we are interested in the calculation of the adiabatic temperature change ∆T ad the incorporation of the lattice vibrations acting as a thermal bath (or reservoir) is fundamental to avoid unphysical results. 50 We have consequently implemented a standard simple Debye model for the vibrational entropy…”
Section: Calculation Of Caloric Responsesmentioning
confidence: 99%
“…1 proved the magnetocrystalline anisotropy to be the microscopic mechanism responsible for the weak ferromagnetic (WF) distortion, whereas the Dzyaloshinsky-Moriya (DM) interaction 12,13 was shown to lift the chiral degeneracy of the Γ 3 and Γ 5 states. The electronic and magnetic structure of these compounds was also investigated theoretically in terms of self-consistent field density functional calculations in the local density approximation (LDA) 4,10,11,14,15 . In the hexagonal phase, the chiral Γ 5 state with a weak fer- romagnetic (WF) distortion and a small net magnetic moment was found as ground state 4,10,15 .…”
Section: Introductionmentioning
confidence: 99%