Owerre S A
Perimeter Institute for Theoretical Physics, 31 Caroline St. N., Waterloo, Ontario N2L 2Y5, Canada. African Institute for Mathematical Sciences, 6 Melrose Road, Muizenberg, Cape Town 7945, South Africa.
J Phys Condens Matter. 2017 May 10;29(18):185801. doi: 10.1088/1361-648X/aa665d. Epub 2017 Mar 13.
The experimental observation of topological magnon bands and thermal Hall effect in a kagomé lattice ferromagnet Cu(1-3, bdc) has inspired the search for topological magnon effects in various insulating ferromagnets that lack an inversion center allowing a Dzyaloshinskii-Moriya (DM) spin-orbit interaction. The star lattice (also known as the decorated honeycomb lattice) ferromagnet is an ideal candidate for this purpose because it is a variant of the kagomé lattice with additional links that connect the up-pointing and down-pointing triangles. This gives rise to twice the unit cell of the kagomé lattice, and hence more interesting topological magnon effects. In particular, the triangular bridges on the star lattice can be coupled either ferromagnetically or antiferromagnetically which is not possible on the kagomé lattice ferromagnets. Here, we study DM-induced topological magnon bands, chiral edge modes, and thermal magnon Hall effect on the star lattice ferromagnet in different parameter regimes. The star lattice can also be visualized as the parent material from which topological magnon bands can be realized for the kagomé and honeycomb lattices in some limiting cases.
在 kagomé 晶格铁磁体 Cu(1-3, bdc) 中对拓扑磁振子能带和热霍尔效应的实验观测,激发了人们在各种缺乏反演中心从而允许 Dzyaloshinskii-Moriya(DM)自旋 - 轨道相互作用的绝缘铁磁体中寻找拓扑磁振子效应的研究。星型晶格(也称为装饰蜂窝晶格)铁磁体是实现这一目的的理想候选材料,因为它是 kagomé 晶格的一种变体,具有连接向上和向下三角形的额外链接。这使得其晶胞大小是 kagomé 晶格的两倍,从而产生更有趣的拓扑磁振子效应。特别是,星型晶格上的三角形桥可以铁磁耦合或反铁磁耦合,而这在 kagomé 晶格铁磁体中是不可能的。在这里,我们研究了不同参数区域下星型晶格铁磁体中 DM 诱导的拓扑磁振子能带、手性边缘模式和热磁振子霍尔效应。在某些极限情况下,星型晶格也可以看作是能实现 kagomé 晶格和蜂窝晶格拓扑磁振子能带的母体材料。