Combinatorial design of partial ordered Al–Cr–Mn–Co medium-entropy alloys for room temperature magnetic refrigeration applications

Author:

Huang Shuo12ORCID,Dastanpour Esmat3ORCID,Schönecker Stephan3ORCID,Ström Valter3ORCID,Chai Guocai45ORCID,Kiss László Ferenc6ORCID,Varga Lajos Károly6ORCID,Jin Hongyun1,Eriksson Olle78,Vitos Levente367ORCID

Affiliation:

1. Faculty of Materials Science and Chemistry, China University of Geosciences 1 , Wuhan 430074, China

2. Zhejiang Institute, China University of Geosciences 2 , Hangzhou 311305, China

3. Department of Materials Science and Engineering, Royal Institute of Technology 3 , Stockholm SE-100 44, Sweden

4. AB Sandvik Materials Technology R&D Center 4 , Sandviken SE-811 81, Sweden

5. Division of Engineering Materials, Department of Management and Engineering, Linköping University 5 , Linköping SE-581 83, Sweden

6. Institute for Solid State Physics and Optics, Wigner Research Centre for Physics 6 , Budapest H-1525, Hungary

7. Department of Physics and Astronomy, Division of Materials Theory, Uppsala University 7 , Uppsala SE-751 20, Sweden

8. School of Science and Technology, Örebro University 8 , Örebro SE-701 82, Sweden

Abstract

Multi-component alloys have received increasing interest for functional applications in recent years. Here, we explore the magnetocaloric response for Al–Cr–Mn–Co medium-entropy alloys by integrated theoretical and experimental methods. Under the guidance of thermodynamic and ab initio calculations, a dual-phase system with large magnetic moment, i.e., Al50Cr19Mn19Co12, is synthesized, and the structural and magnetocaloric properties are confirmed via characterization. The obtained results indicate that the selected alloy exhibits a co-continuous mixture of a disordered body-centered cubic and an ordered B2 phase. The ab initio and Monte Carlo calculations indicate that the presence of the ordered B2 phase is responsible for the substantial magnetocaloric effect. The magnetization measurements demonstrated that this alloy undergoes a second-order magnetic transition with the Curie temperature of ∼300 K. The magnetocaloric properties are examined using magnetic entropy change, refrigeration capacity, and adiabatic temperature change. The property-directed strategy explored here is intended to contribute to the study of potential multi-component alloys in magnetocaloric applications.

Funder

Stiftelsen för Strategisk Forskning

Vetenskapsrådet

VINNOVA

Energimyndigheten

Carl Tryggers Stiftelse för Vetenskaplig Forskning

Hungarian Science Foundation

Natural Science Foundation of Zhejiang Province

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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