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et al. First-Order Magnetic Phase Transitionin bcc FeRh–Ir Alloyunder HighPressures up to 6.2 GPa // J. Phys. Soc. Jpn. 1994. Vol. 63, № 3. P. 855–858.121.Kaneta Y. et al. Theoretical Calculations for Magnetic Property of FeRh Inter-MetallicCompound with Site-Exchange Defects // Jpn. J. Appl. Phys. 2011. Vol. 50, № 10. P.
105803.122.Kibata Y. et al. Defect Structures of Intermetallic FeRh Alloys Induced by High-SpeedDeformation // Symposium BB – Defect Properties and Related Phenomena in IntermetallicAlloys. 2002. Vol. 753.123.Oshima R. et al. Defect structures and phase transitions of FeRh alloys deformed at highspeed deformation // Mater. Sci. Eng. A. 2003.
Vol. 350, № 1–2. P. 139–144.124.Oshima R. et al. Positron Annihilation Study on Defects and Phase Transition of FeRh AlloysSubjected to High-Speed Deformation // Radiat. Eff. Defects Solids. 2002. Vol. 157, № 1–2.P. 127–135.125.Navarro E. et al. Enthalpies of B2 antiferro-ferromagnetic and metastable fcc-B2transformations in FeRh // Solid State Commun. 1996. Vol.
100, № 1. P. 57–60.126.Swartzendruber L.J. The Fe−Rh (Iron-Rhodium) system // Bull. Alloy Phase Diagr. 1984.Vol. 5, № 5. P. 456–462.127.Zsoldos L. Lattice Parameter Change of FeRh Alloys due to AntiferromagneticFerromagnetic Transformation // Phys. Status Solidi B. 1967. Vol. 20, № 1. P. K25–K28.128.Chao C.C., Duwez P., Tsuei C.C.
Metastable fcc Fe–Rh Alloys and the Fe–Rh Phase Diagram// J. Appl. Phys. 1971. Vol. 42, № 11. P. 4282–4284.129.Shirane G. et al. M"ossbauer Study of Hyperfine Fields and Isomer Shifts in the Fe-Rh Alloys// Phys. Rev. 1963. Vol. 131, № 1. P. 183–190.130.Buschow K.H.J., van Engen P.G., Jongebreur R. Magneto-optical properties of metallicferromagnetic materials // J. Magn. Magn. Mater. 1983. Vol.
38, № 1. P. 1–22.131.Marcus, Moruzzi, Qiu. Type-II antiferromagnetism in compounds of iron with 4d metals //Phys. Rev. B Condens. Matter. 1996. Vol. 54, № 17. P. 11933–11935.122132.Kobayashi K. et al. Magnetic circular x-ray dichroism at Pd L2,3-edges in Fe Pd alloys //Solid State Commun. 1996. Vol. 97, № 6. P. 491–496.133.Takahashi M., Oshima R. Annealing Effect on Phase Transition of Equiatomic FeRh Alloy //Mater. Trans. JIM. 1995. Vol. 36, № 6. P. 735–742.134.Hofer E.
Magnetic properties of Rh-rich FeRh alloy // J. Phys. Chem. Solids. 1966. Vol. 27.P. 1552–1555.135.Manekar M., Roy S.B. Reproducible room temperature giant magnetocaloric effect in Fe?Rh// J. Phys. Appl. Phys. 2008. Vol. 41, № 19. P. 192004.136.Lommel J.M., Kouvel J.S.
Effects of Mechanical and Thermal Treatment on the Structure andMagnetic Transitions in FeRh // J. Appl. Phys. 1967. Vol. 38, № 3. P. 1263–1264.137.Suryanarayana C. Mechanical alloying and milling // Prog. Mater. Sci. 2001. Vol. 46, № 1–2.P. 1–184.138.Marquina C. et al. Magnetic and magnetoelastic behavior of mechanically alloyed FeRhcompound // J. Appl. Phys. 1997. Vol.
81, № 5. P. 2315–2320.139.Morita H. et al. Hysteresis loop of thermomagnetic curve of FeRh alloys // J. Magn. Magn.Mater. 1995. Vol. 140–144, Part 1. P. 77–78.140.Kushwaha P. et al. Influence of thermal annealing and magnetic field on first order magnetictransition in Pd substituted FeRh // J. Phys. Conf. Ser. 2010.
Vol. 200, № 3. P. 032038.141.Tishin A.M., Spichkin Y.I. The Magnetocaloric Effect and its Applications. CRC Press, 2003.494 p.142.Annaorazov M.P. et al. // Pisma Zh. Tekh. Phys. 1991. Vol. 12, № 38.143.Annaorazov M.P., Güven H.M., Bärner K. COP of cooling cycles around the AF–F transitionin FeRh based on experimental data // J. Alloys Compd. 2005. Vol. 397, № 1–2. P.
26–30.144.Zverev V.I., Tishin A.M., Kuz’min M.D. The maximum possible magnetocaloric ΔT effect //J. Appl. Phys. 2010. Vol. 107, № 4. P. 043907.145.Dan’kov S.Y. et al. Magnetic phase transitions and the magnetothermal properties ofgadolinium // Phys.
Rev. B. 1998. Vol. 57, № 6. P. 3478–3490.146.Tishin A.M. Magnetic refrigeration in the low‐temperature range // J. Appl. Phys. 1990. Vol.68, № 12. P. 6480–6484.147.Gschneidner K.A., Pecharsky V.K. Intermetallic compounds for magnetic refrigeration //Intermetallic compounds – principles and practice / ed. Westbrook J.H., Fleischer R.L. (JohnWiley and Sons, N.Y., 2001. Vol.
3.148.Dan’kov S.Y., Ivanova T.I., Tishin A.M. // Pisma JTP. Vol. 18, № 35.149.Nikitin S.A. et al. The magnetocaloric effect in Fe49Rh51 compound // Phys. Lett. A. 1990.Vol. 148, № 6–7. P. 363–366.123150.Guo Z.B. et al. Large Magnetic Entropy Change in Perovskite-Type Manganese Oxides //Phys.
Rev. Lett. 1997. Vol. 78, № 6. P. 1142–1145.151.K. A. Gschneidner J., Pecharsky V.K. Magnetocaloric Materials // Annu. Rev. Mater. Sci.2000. Vol. 30, № 1. P. 387–429.152.Pecharsky V.K., Gschneidner J. K.A. Giant Magnetocaloric Effect in Gd5Si2Ge2 // Phys. Rev.Lett. 1997. Vol. 78, № 23. P. 4494–4497.153.Tegus O.
et al. Magnetic-phase transitions and magnetocaloric effects // Phys. B Condens.Matter. 2002. Vol. 319, № 1–4. P. 174–192.154.Hashimoto T. et al. Magnetic refrigeration in the temperature range from 10 K to roomtemperature: the ferromagnetic refrigerants // Cryogenics. 1981. Vol. 21, № 11. P. 647–653.155.Wada H., Tanabe Y.
Giant magnetocaloric effect of MnAs1−xSbx // Appl. Phys. Lett. 2001.Vol. 79, № 20. P. 3302–3304.156.Hu F. et al. Influence of negative lattice expansion and metamagnetic transition on magneticentropy change in the compound LaFe11.4Si1.6 // Appl. Phys. Lett. 2001. Vol. 78, № 23. P.3675–3677.157.Hu F. et al. Magnetic entropy change in Ni50.1Mn20.7Ga29.6 single crystal // J. Appl. Phys.2001. Vol. 90, № 10. P. 5216–5219.158.Hu F. et al.
Very large magnetic entropy change near room temperature inLaFe11.2Co0.7Si1.1 // Appl. Phys. Lett. 2002. Vol. 80, № 5. P. 826–828.159.Spichkin Y.I., Tishin A.M. Magnetocaloric effect at the first-order magnetic phase transitions// J. Alloys Compd. 2005. Vol. 403, № 1–2. P. 38–44.160.Spichkin Y.I., Tishin A.M. Thermodynamic model of the magnetocaloric effect near the firstorder magnetic phase transitions // J. Magn.
Magn. Mater. 2005. Vol. 290–291, Part 1. P.700–702.161.Aliev A.M. et al. Reversible magnetocaloric effect in materials with first order phasetransitions in cyclic magnetic fields: Fe48Rh52and Sm0.6Sr0.4MnO 3 // Appl. Phys. Lett.2016. Vol. 109, № 20. P. 202407.162.Chirkova A. et al. Giant adiabatic temperature change in FeRh alloys evidenced by directmeasurements under cyclic conditions // Acta Mater. 2016. Vol. 106. P.
15–21.163.Skokov K.P. et al. Influence of thermal hysteresis and field cycling on the magnetocaloriceffect in LaFe11.6Si1.4 // J. Alloys Compd. 2013. Vol. 552, № Supplement C. P. 310–317.164.Zhou T. et al. On the origin of giant magnetocaloric effect and thermal hysteresis inmultifunctional α-FeRh thin films // Phys. Lett. A. 2013. Vol.
377, № 42. P. 3052–3059.165.Inoue S., Ko H.Y.Y., Suzuki T. Magnetic Properties of Single-Crystalline FeRh Alloy ThinFilms // IEEE Trans. Magn. 2008. Vol. 44, № 11. P. 2875–2878.124166.Ko H.Y.Y., Suzuki T. Synthesis and magnetic properties of self-organized FeRh nanoparticles// J. Appl. Phys. 2007. Vol. 101, № 9. P. 09J103.167.Radu I. et al. Laser-induced generation and quenching of magnetization on FeRh studied withtime-resolved x-ray magnetic circular dichroism // Phys.
Rev. B. 2010. Vol. 81, № 10. P.104415.168.Quirin F. et al. Structural dynamics in FeRh during a laser-induced metamagnetic phasetransition // Phys. Rev. B. 2012. Vol. 85, № 2. P. 020103.169.Ju G. et al. Ultrafast Generation of Ferromagnetic Order via a Laser-Induced PhaseTransformation in FeRh Thin Films // Phys. Rev. Lett. 2004. Vol. 93, № 19.
P. 197403.170.Shymanovich U. et al. Coherent acoustic and optical phonons in laser‐excited solids studiedby ultrafast time‐resolved X‐ray diffraction // AIP Conference Proceedings. AIP Publishing,2010. Vol. 1278. P. 558–566.171.Thiele J.-U., Buess M., Back C.H. Spin dynamics of the antiferromagnetic-to-ferromagneticphase transition in FeRh on a sub-picosecond time scale // Appl. Phys.
Lett. 2004. Vol. 85, №14. P. 2857–2859.172.Günther S. et al. Testing spin-flip scattering as a possible mechanism of ultrafastdemagnetization in ordered magnetic alloys // Phys. Rev. B. 2014. Vol. 90, № 18. P. 180407.173.Bergman B. et al. Identifying growth mechanisms for laser-induced magnetization in FeRh //Phys. Rev. B - Condens. Matter Mater. Phys. 2006. Vol.















