Multicaloric Effect in 0–3-Type MnAs/PMN–PT Composites

Author:

Amirov Abdulkarim A.1ORCID,Anokhin Alexander S.2,Talanov Mikhail V.3,Sokolovskiy Vladimir V.45ORCID,Kutzhanov Magzhan. K.5ORCID,Huang Houbing6,Reznichenko Larisa A.7,Es’kov Andrey V.2ORCID,Aliev Akhmed M.1

Affiliation:

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

2. International Laboratory “Materials and Structures for Electro- and Magnetocaloric Energy Conversion”, ITMO University, 197101 St. Petersburg, Russia

3. Laboratory of Terahertz Spectroscopy, Moscow Institute of Physics and Technology, 141701 Dolgoprudny, Russia

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

5. Research Laboratory of Inorganic Nanomaterials, National University of Science and Technology “MISIS”, 119049 Moscow, Russia

6. School of Materials Science and Engineering, Advanced Research Institute of Multidisciplinary Science, Beijing Institute of Technology, 100081 Beijing, China

7. Research Institute of Physics, Southern Federal University, 344090 Rostov-on-Don, Russia

Abstract

The new xMnAs/(1 − x)PMN–PT (x = 0.2, 0.3) multicaloric composites, consisting of the modified PMN–PT-based relaxor-type ferroelectric ceramics and ferromagnetic compound of MnAs were fabricated, and their structure, magnetic, dielectric properties, and caloric effects were studied. Both components of the multicaloric composite have phase transition temperatures around 315 K, and large electrocaloric (~0.27 K at 20 kV/cm) and magnetocaloric (~13 K at 5 T) effects around this temperature were observed. As expected, composite samples exhibit a decrease in magnetocaloric effect (<1.4 K at 4 T) in comparison with an initial MnAs magnetic component (6.7 K at 4 T), but some interesting phenomena associated with magnetoelectric interaction between ferromagnetic and ferroelectric components were observed. Thus, a composite with x = 0.2 exhibits a double maximum in isothermal magnetic entropy changes, while a composite with x = 0.3 demonstrates behavior more similar to MnAs. Based on the results of experiments, the model of the multicaloric effect in an MnAs/PMN–PT composite was developed and different scenario observations of multicaloric response were modeled. In the framework of the proposed model, it was shown that boosting of caloric effect could be achieved by (1) compilation of ferromagnetic and ferroelectric components with large caloric effects in selected mass ratio and phase transition temperature; and (2) choosing of magnetic and electric field coapplying protocol. The 0.3MnAs/0.7PMN–PT composite was concluded to be the optimal multicaloric composite and a phase shift ∆φ = −π/4 between applied manetic fields can provide a synergetic caloric effect at a working point of 316 K.

Funder

RFBR

Strategic Academic Leadership Program

Ministry of Science and Higher Education of the Russian Federation

Publisher

MDPI AG

Subject

Engineering (miscellaneous),Ceramics and Composites

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