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A controllable magneto-topological property and band gap engineering in 2D ferromagnetic Lieb lattice

机译:二维铁磁利勃晶格中的可控磁拓扑性质和带隙工程

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摘要

In this paper, we study theoretically the magneto-topological property and gap engineering of two-dimensional ferromagnetic Lieb lattice by taking into account the next-nearest-neighbors (NNN) coupling and the important Dzyaloshinsky-Moriya interaction (DMI). In particular, the density of states and dispersion energy of the system in terms of various NNN and DMI in the presence of Zeeman field produce the main features in the context of Heisenberg model, Holstein-Primakoff transformation, and Green's function approach. It is found that the inclusion of NNN coupling opens a gap, leading to the metal-semiconductor-insulator transition depending on its intensity. Furthermore, DMI introduces two extra degenerate bands in the vicinity of Fermi-level due to the Stark effect. The magneto-topological property of the gap in our model is determined by the tunneling probability of particles at both weak and strong NNN and DMI regimes. Finally, we discuss the extension of nuclear spins to arbitrary values.
机译:在本文中,我们通过考虑次近邻(NNN)耦合和重要的Dzyaloshinsky-Moriya相互作用(DMI),从理论上研究了二维铁磁Lieb晶格的磁拓扑性质和间隙工程。特别地,在海森堡模型,霍尔斯坦-普里马科夫变换和格林函数方法的背景下,存在塞曼场的情况下,根据各种NNN和DMI的系统的状态密度和分散能产生了主要特征。发现包含NNN耦合会打开一个间隙,导致金属-半导体-绝缘体的转变取决于强度。此外,由于斯塔克效应,DMI在费米能级附近引入了两个额外的简并带。在我们的模型中,缝隙的磁拓扑性质由弱和强NNN和DMI机制下的粒子隧穿概率决定。最后,我们讨论了核自旋向任意值的扩展。

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