Roychowdhury Subhajit, Ochs Andrew M, Guin Satya N, Samanta Kartik, Noky Jonathan, Shekhar Chandra, Vergniory Maia G, Goldberger Joshua E, Felser Claudia
Max Planck Institute for Chemical Physics of Solids, 01187, Dresden, Germany.
The Ohio State University, Columbus, OH, 43210, USA.
Adv Mater. 2022 Oct;34(40):e2201350. doi: 10.1002/adma.202201350. Epub 2022 Aug 29.
Kagome magnets possess several novel nontrivial topological features owing to the strong correlation between topology and magnetism that extends to their applications in the field of thermoelectricity. Conventional thermoelectric (TE) devices use the Seebeck effect to convert heat into electrical energy. In contrast, transverse thermoelectric devices based on the Nernst effect are attracting recent attention due to their unique transverse geometry, which uses a single material to eliminate the need for a multitude of electrical connections compared to conventional TE devices. Here, a large anomalous transverse thermoelectric effect of ≈2 µV K at room temperature in a kagome antiferromagnet YMn Sn single crystal is obtained. The obtained value is larger than that of state-of-the-art canted antiferromagnetic (AFM) materials and comparable with ferromagnetic systems. The large anomalous Nernst effect (ANE) can be attributed to the net Berry curvature near the Fermi level. Furthermore, the ANE of the AFM YMn Sn exceeds the magnetization scaling relationship of conventional ferromagnets. The results clearly illustrate that AFM material YMn Sn is an ideal topological material for room-temperature transverse thermoelectric applications.
由于拓扑结构与磁性之间的强相关性,Kagome磁体具有几种新颖的非平凡拓扑特征,这种相关性也延伸到了它们在热电领域的应用中。传统的热电(TE)装置利用塞贝克效应将热能转化为电能。相比之下,基于能斯特效应的横向热电装置因其独特的横向几何结构而受到关注,与传统TE装置相比,它使用单一材料,无需大量电气连接。在此,在Kagome反铁磁体YMnSn单晶中,在室温下获得了约2 μV/K的大反常横向热电效应。所获得的值大于最先进的倾斜反铁磁(AFM)材料的值,与铁磁系统相当。大反常能斯特效应(ANE)可归因于费米能级附近的净贝里曲率。此外,AFM YMnSn的ANE超过了传统铁磁体的磁化比例关系。结果清楚地表明,AFM材料YMnSn是室温横向热电应用的理想拓扑材料。