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手性 Janus 二维 Sb 和 Bi 拓扑单层的 Rashba 劈裂和电子谷特性。

Rashba Splitting and Electronic Valley Characteristics of Janus Sb and Bi Topological Monolayers.

机构信息

School of Material Science and Chemical Engineering, Harbin University of Science and Technology, Harbin 150040, China.

出版信息

Int J Mol Sci. 2022 Jul 10;23(14):7629. doi: 10.3390/ijms23147629.

Abstract

Janus Sb and Bi monolayers as a new class of 2D topological insulator materials, which could be fulfilled by asymmetrical functionalizations with methyl or hydroxyl, are demonstrated by first-principles spin-orbit coupling (SOC) electronic structure calculations to conflate nontrivial topology, Rashba splitting and valley-contrast circular dichroism. Cohesive energies and phonon frequency dispersion spectra indicate that all Janus Sb and Bi monolayers possess a structural stability in energetic statics but represent virtual acoustic phonon vibrations of the hydrogen atoms passivating on monolayer surfaces. Band structures of Janus Sb and Bi monolayers and their nanoribbons demonstrate they are nontrivial topological insulators. Rashba spin splitting at G point in Brillouin zone of Janus Bi monolayers arises from the strong SOC and orbitals of Bi bonding atoms together with the internal out-of-plane electric field caused by asymmetrical functionalization. Janus Sb and Bi monolayers render direct and indirect giant bandgaps, respectively, which are derived from the strong SOC and orbitals at band-valley Brillouin points K and K' where valley-selective circular dichroism of spin valley Hall insulators is also exhibited.

摘要

Janus Sb 和 Bi 单层作为一类新的二维拓扑绝缘体材料,通过不对称的甲基或羟基功能化可以实现,通过第一性原理自旋轨道耦合 (SOC) 电子结构计算证明了非平凡拓扑、Rashba 劈裂和谷对比圆二色性的融合。结合能和声子频散谱表明,所有 Janus Sb 和 Bi 单层在能量静态中都具有结构稳定性,但代表了在单层表面钝化的氢原子的虚拟声子振动。Janus Sb 和 Bi 单层及其纳米带的能带结构表明它们是非平凡的拓扑绝缘体。Janus Bi 单层布里渊区 G 点的 Rashba 自旋劈裂源于强 SOC 和 Bi 成键原子的轨道以及不对称功能化引起的内部平面外电场。Janus Sb 和 Bi 单层分别产生直接和间接的巨大能隙,这是由能带谷布里渊点 K 和 K'处的强 SOC 和轨道引起的,在那里也表现出自旋谷霍尔绝缘体的谷选择性圆二色性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/541f/9321792/eef31e91ff17/ijms-23-07629-g001.jpg

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