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Intrinsic ferromagnetism and topological properties in two-dimensional rhenium halides

机译:内在的铁磁性和拓扑在二维铼卤化物

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摘要

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.
机译:实现强劲的内在铁磁性在二维(2 d)材料相结合有趣的量子反常霍尔(QAH)效果为小说提供了肥沃的土壤物理和下一代自旋电子和拓扑设备。泛函理论(DFT),我们预测,分层重5 d过渡金属卤化物(TMHs)ReX3 (X = Br, I),显示内在与高自旋极化和铁磁性高居里温度。和热力学稳定性确保了他们实验的可行性。再保险使电子的耦合(SOC)ReI3单层结构拓扑重要的有一个很大的陈省身(C = 4)数量。DFT + U计算显示,2 d系统经历了一个非平凡琐碎的过渡增加现场哈伯德库仑相互作用通过一个狄拉克锥的出现。过渡是证实的出现手性边缘状态和异常大厅导电性。室温铁磁性的自动瘦5 d TMHs,但也铺平了道路潜在的实现QAH效应高陈省身数字的2 d层。

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