论文标题

铁磁混合节点环和二维中的可切换类型I和类型II Weyl fermions

Ferromagnetic hybrid nodal loop and switchable type-I and type-II Weyl fermions in two-dimension

论文作者

He, Tingli, Zhang, Xiaoming, Yu, Zhi-Ming, Liu, Ying, Dai, Xuefang, Liu, Guodong, Yao, Yugui

论文摘要

作为一种新型的费尔米管状态,具有I型和II型带交叉共存的混合节点环,引起了强烈的研究兴趣。但是,在二维(2D)材料和铁磁(FM)材料中,实现混合节点环仍然是一个挑战。在这里,我们提出了2D CRN单层中的第一个FM混合节点环。我们表明该材料具有高质地温度(> 600 K)的FM基态,并具有平面外[001]磁化。它显示了一个半金属的带状结构,在旋转通道中有两个频带在费米水平附近相互交叉。这些频带同时产生I型和II型条带交叉,它们形成了完全自旋的杂交节点环。我们发现节点环受到镜子对称性的保护,并防止旋转轨道耦合(SOC)。建立了一个有效的哈密顿量,描述了混合节点环。我们进一步发现,在诸如应变之类的外部扰动下,节点环的构型可以移动。最值得注意的是,我们证明了I型和II型Weyl节点都可以通过简单地将磁化化从平面外移到平面内,从这种FM杂交节点环中实现。我们的工作为2D材料中的FM混合节点环和Weyl fermions提供了出色的候选者,并且对于与其有趣的特性相关的拓扑应用也很有希望。

As a novel type of fermionic state, hybrid nodal loop with the coexistence of both type-I and type- II band crossings has attracted intense research interest. However, it remains a challenge to realize hybrid nodal loop in both two-dimensional (2D) materials and in ferromagnetic (FM) materials. Here, we propose the first FM hybrid nodal loop in 2D CrN monolayer. We show that the material has a high Curie temperature (> 600 K) FM ground state, with the out-of-plane [001] magnetization. It shows a half-metallic band structure with two bands in the spin-up channel crossing each other near the Fermi level. These bands produce both type-I and type-II band crossings, which form a fully spin-polarized hybrid nodal loop. We find the nodal loop is protected by the mirror symmetry and robust against spin-orbit coupling (SOC). An effective Hamiltonian characterizing the hybrid nodal loop is established. We further find the configuration of nodal loop can be shifted under external perturbations such as strain. Most remarkably, we demonstrate that both type-I and type-II Weyl nodes can be realized from such FM hybrid nodal loop by simply shifting the magnetization from out-of-plane to in-plane. Our work provides an excellent candidate to realize FM hybrid nodal loop and Weyl fermions in 2D material, and is also promising for related topological applications with their intriguing properties.

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