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受挫蜂窝晶格和双层三角晶格上的拓扑磁振子能带与非常规热霍尔效应。

Topological magnon bands and unconventional thermal Hall effect on the frustrated honeycomb and bilayer triangular lattice.

作者信息

Owerre S A

机构信息

Perimeter Institute for Theoretical Physics, 31 Caroline St. N., Waterloo, Ontario N2L 2Y5, Canada.

出版信息

J Phys Condens Matter. 2017 Sep 27;29(38):385801. doi: 10.1088/1361-648X/aa7dd2. Epub 2017 Jul 5.

Abstract

In the conventional ferromagnetic systems, topological magnon bands and thermal Hall effect are due to the Dzyaloshinskii-Moriya interaction (DMI). In principle, however, the DMI is either negligible or it is not allowed by symmetry in some quantum magnets. Therefore, we expect that topological magnon features will not be present in those systems. In addition, quantum magnets on the triangular-lattice are not expected to possess topological features as the DMI or spin-chirality cancels out due to equal and opposite contributions from adjacent triangles. Here, however, we predict that the isomorphic frustrated honeycomb-lattice and bilayer triangular-lattice antiferromagnetic system will exhibit topological magnon bands and topological thermal Hall effect in the absence of an intrinsic DMI. These unconventional topological magnon features are present as a result of magnetic-field-induced non-coplanar spin configurations with nonzero scalar spin chirality. The relevance of the results to realistic bilayer triangular antiferromagnetic materials are discussed.

摘要

在传统的铁磁系统中,拓扑磁振子能带和热霍尔效应归因于Dzyaloshinskii-Moriya相互作用(DMI)。然而,原则上,在某些量子磁体中,DMI要么可以忽略不计,要么由于对称性不被允许。因此,我们预计这些系统中不会存在拓扑磁振子特征。此外,由于相邻三角形的贡献相等且相反,三角晶格上的量子磁体预计不会具有拓扑特征,因为DMI或自旋手性会相互抵消。然而,在此我们预测,同构的受挫蜂窝晶格和双层三角晶格反铁磁系统在没有固有DMI的情况下将表现出拓扑磁振子能带和拓扑热霍尔效应。这些非常规的拓扑磁振子特征是由磁场诱导的具有非零标量自旋手性的非共面自旋构型导致的。讨论了这些结果与实际双层三角反铁磁材料的相关性。

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