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二维铼卤化物中的本征铁磁性和拓扑性质。

Intrinsic ferromagnetism and topological properties in two-dimensional rhenium halides.

机构信息

Department of Physics and Astronomy, California State University, Northridge, CA 91330, USA.

出版信息

Nanoscale. 2019 Mar 28;11(13):6101-6107. doi: 10.1039/c9nr00315k.

Abstract

The realization of robust intrinsic ferromagnetism in two-dimensional (2D) materials in conjunction with the intriguing quantum anomalous Hall (QAH) effect has provided a fertile ground for novel physics and for the next-generation spintronic and topological devices. On the basis of density functional theory (DFT), we predict that layered 5d transition-metal heavier halides (TMHs), such as ReX3 (X = Br, I), show intrinsic ferromagnetism with high spin polarization and high Curie temperatures. The outstanding dynamic and thermodynamic stability ensures their experimental feasibility. The strong spin-orbit coupling (SOC) of Re makes the electronic structure of the ReI3 monolayer topologically nontrivial with a large Chern number (C = -4). DFT+U calculations reveal that the 2D system undergoes a nontrivial to trivial transition with increasing on-site Hubbard Coulomb interaction U through the emergence of a Dirac cone. This transition is corroborated by the emergence of chiral edge states and the anomalous Hall conductivity. These findings not only demonstrate room-temperature ferromagnetism in atomically thin 5d TMHs, but also pave the way for the potential realization of the QAH effect with high Chern numbers in pristine 2D layers.

摘要

在二维(2D)材料中实现稳健的本征铁磁性以及有趣的量子反常霍尔(QAH)效应,为新物理和下一代自旋电子学和拓扑器件提供了肥沃的土壤。基于密度泛函理论(DFT),我们预测层状 5d 过渡金属较重卤化物(TMHs),如 ReX3(X = Br,I),具有高自旋极化和居里温度的本征铁磁性。突出的动态和热力学稳定性确保了它们的实验可行性。Re 的强自旋轨道耦合(SOC)使得 ReI3 单层的电子结构具有拓扑非平庸性,Chern 数(C = -4)较大。DFT+U 计算表明,随着局域 Hubbard 库仑相互作用 U 的增加,二维系统通过出现狄拉克锥经历了从非平庸到平凡的转变。这一转变得到了手性边缘态和反常霍尔电导率的出现的证实。这些发现不仅证明了原子层厚 5d TMHs 中的室温铁磁性,而且为在原始二维层中实现具有高 Chern 数的 QAH 效应铺平了道路。

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