Large Anomalous Nernst Effects at Room Temperature in Fe3Pt Thin Films

Author:

Li Minghang12,Pi Hanqi12,Zhao Yunchi1,Lin Ting12,Zhang Qinghua1,Hu Xinzhe1,Xiong Changmin3,Qiu Zhiyong4,Wang Lichen5,Zhang Ying12,Cai Jianwang12,Liu Wuming12,Sun Jirong12,Hu Fengxia12,Gu Lin1,Weng Hongming12,Wu Quansheng12,Wang Shouguo6,Chen Yunzhong12ORCID,Shen Baogen1257

Affiliation:

1. Beijing National Laboratory of Condensed Matter Physics and Institute of Physics Chinese Academy of Sciences Beijing 100190 China

2. School of Physical Sciences University of Chinese Academy of Sciences Beijing 100049 China

3. Department of Physics Beijing Normal University Beijing 100875 China

4. School of Material Science and Engineering Dalian University of Technology Dalian 116024 China

5. Ningbo Institute of Materials Technology & Engineering Chinese Academy of Sciences Ningbo 315201 China

6. School of Materials Science and Engineering Anhui University Hefei 230601 China

7. Ganjiang Innovation Academy Chinese Academy of Sciences Ganzhou 341000 China

Abstract

AbstractHeat current in ferromagnets can generate a transverse electric voltage perpendicular to magnetization, known as anomalous Nernst effect (ANE). ANE originates intrinsically from the combination of large Berry curvature and density of states near the Fermi energy. It shows technical advantages over the conventional longitudinal Seebeck effect in converting waste heat to electricity due to its unique transverse geometry. However, materials showing giant ANE remain to be explored. Herein,  a large ANE thermopower of Syx ≈ 2 µV K−1 at room temperature in ferromagnetic Fe3Pt epitaxial films is reported, which also show a giant transverse thermoelectric conductivity of αyx ≈ 4 A K−1 m−1 and a remarkable coercive field of 1300 Oe. The theoretical analysis reveals that the strong spin‐orbit interaction in addition to the hybridization between Pt 5d and Fe 3d electrons leads to a series of distinct energy gaps and large Berry curvature in the Brillouin zone, which is the key for the large ANE. These results highlight the important roles of both Berry curvature and spin‐orbit coupling in achieving large ANE at zero magnetic field, providing pathways to explore materials with giant transverse thermoelectric effect without an external magnetic field.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Chinese Academy of Sciences

Natural Science Foundation of Beijing Municipality

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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