论文标题

2D材料中的孔掺杂诱导的铁磁性

Hole-doping induced ferromagnetism in 2D materials

论文作者

Meng, R., Pereira, L. M. C., Locquet, J. P., Afanas'ev, V. V., Pourtois, G., Houssa, M.

论文摘要

二维(2D)铁磁材料被认为是子孙后代的Spintronic设备的有前途的候选人。然而,具有固有铁磁的2D材料很少。进行高通量的第一原理模拟是为了筛选2D材料,这些材料将非磁性呈现到孔掺杂时的铁磁过渡。随后进行了全球进化搜索,以确定符合条件的候选者的替代性原子结构,并确定了122种表现出诱导诱导的铁磁性的材料。系统地研究了它们的能量和动态稳定性及其在孔掺杂下的磁性特性。这2D材料中有一半是金属卤化物,其次是硫化剂,氧化物和氮化物,其中一些预测居里温度在300 K以上的温度。还讨论了负责这些2D材料中铁磁顺序的交换相互作用。这项工作不仅提供了对孔掺杂孔的2D铁磁材料的理论见解,而且还丰富了2D磁性材料的家族,以实现可能的自旋应用。

Two-dimensional (2D) ferromagnetic materials are considered as promising candidates for the future generations of spintronic devices. Yet, 2D materials with intrinsic ferromagnetism are scarce. High-throughput first-principles simulations are performed in order to screen 2D materials that present a non-magnetic to a ferromagnetic transition upon hole doping. A global evolutionary search is subsequently performed, in order to identify alternative possible atomic structures of the eligible candidates, and 122 materials exhibiting a hole-doping induced ferromagnetism are identified. Their energetic and dynamic stability, as well as their magnetic properties under hole doping are investigated systematically. Half of these 2D materials are metal halides, followed by chalcogenides, oxides and nitrides, some of them having predicted Curie temperatures above 300 K. The exchange interactions responsible for the ferromagnetic order in these 2D materials are also discussed. This work not only provides theoretical insights into hole-doped 2D ferromagnetic materials, but also enriches the family of 2D magnetic materials for possible spintronic applications.

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