Abnormal Magnetic Phase Transition in Mixed‐Phase (110)‐Oriented FeRh Films on Al2O3 Substrates via the Anomalous Nernst Effect

Author:

Choi Jae Won1,Park Chanho1,Kim Gil‐Sung1,Cho Jung‐Min1,Park No‐Won1,Kim Yun‐Ho1,Jung Min Young1,Chang Seo Hyoung1,Akhanda Md Sabbir2,Shivaram Bellave3,Bennett Steven P.4,Zebarjadi Mona25,Lee Sang‐Kwon1ORCID

Affiliation:

1. Department of Physics Chung‐Ang University Seoul 06974 Republic of Korea

2. Department of Electrical and Computer Engineering University of Virginia Charlottesville VA 22904 USA

3. Department of Physics University of Virginia Charlottesville VA 22904 USA

4. Materials Science and Technology Division U.S. Naval Research Laboratory Washington DC 20375 USA

5. Department of Materials Science and Engineering University of Virginia Charlottesville VA 22904 USA

Abstract

AbstractIron rhodium (FeRh) undergoes a first‐order anti‐ferromagnetic to ferromagnetic phase transition above its Curie temperature. By measuring the anomalous Nernst effect (ANE) in (110)‐oriented FeRh films on Al2O3 substrates, the ANE thermopower over a temperature range of 100–350 K is observed, with similar magnetic transport behaviors observed for in‐plane magnetization (IM) and out‐of‐plane magnetization (PM) configurations. The temperature‐dependent magnetization–magnetic field strength (M–H) curves revealed that the ANE voltage is proportional to the magnetization of the material, but additional features magnetic textures not shown in the M‐H curves remained intractable. In particular, a sign reversal occurred for the ANE thermopower signal near zero field in the mixed‐magnetic‐phase films at low temperatures, which is attributed to the diamagnetic properties of the Al2O3 substrate. Finite element method simulations associated with the Heisenberg spin model and Landau–Lifshitz–Gilbert equation strongly supported the abnormal heat transport behavior from the Al2O3 substrate during the experimentally observed magnetic phase transition for the IM and PM configurations. The results demonstrate that FeRh films on an Al2O3 substrate exhibit unusual behavior compared to other ferromagnetic materials, indicating their potential for use in novel applications associated with practical spintronics device design, neuromorphic computing, and magnetic memory.

Funder

National Research Foundation of Korea

U.S. Naval Research Laboratory

National Science Foundation

Publisher

Wiley

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