论文标题

一单层MOOCL $ _2 $中的高度各向异性二维金属

Highly anisotropic two-dimensional metal in monolayer MoOCl$_2$

论文作者

Zhao, Jianzhou, Wu, Weikang, Zhu, Jiaojiao, Lu, Yunhao, Xiang, Bin, Yang, Shengyuan A.

论文摘要

各向异性是材料的一般特征。强大的各向异性可能导致有趣的物理特性和有用的应用。在这里,基于第一原理的计算和理论分析,我们预测稳定的二维(2D)材料 - 单层MOOCL $ _2 $,并表明它具有与高各向异性相关的有趣特性。单层MOOCL $ _2 $可以很容易地从已经合成的范德华分层散装中去除。我们表明,高平面各向异性在单层MOOCL $ _2 $的结构,语音,机械,电子和光学特性中表现出来。该材料是一种具有高度各向异性费米表面的金属,在费米水平上产生开放的轨道,可以在磁电流中探测。值得注意的是,高各向异性和金属特征的组合使单层MOOCL $ _2 $成为几乎理想的双曲线材料。它具有两个非常宽的双曲频率窗口,从0.41 eV(99 THz)到2.90 eV(701 THz),从3.63 EV(878 THZ)到5.54 eV(1340 THZ)。以前的窗口与可见频谱有很大的重叠,并且大部分窗口的耗散非常小。可以通过施加的应变进一步调节窗口,以便在选定的频率下,椭圆形和双曲线特征之间的过渡可以通过应变诱导。我们的工作发现了具有非凡特性的高度各向异性2D金属,这具有电子和光学应用的巨大潜力。

Anisotropy is a general feature in materials. Strong anisotropy could lead to interesting physical properties and useful applications. Here, based on first-principles calculations and theoretical analysis, we predict a stable two-dimensional (2D) material---the monolayer MoOCl$_2$, and show that it possesses intriguing properties related to its high anisotropy. Monolayer MoOCl$_2$ can be readily exfoliated from the van der Waals layered bulk, which has already been synthesized. We show that a high in-plane anisotropy manifests in the structural, phononic, mechanical, electronic, and optical properties of monolayer MoOCl$_2$. The material is a metal with highly anisotropic Fermi surfaces, giving rise to open orbits at the Fermi level, which can be probed in magneto-transport. Remarkably, the combination of high anisotropy and metallic character makes monolayer MoOCl$_2$ an almost ideal hyperbolic material. It has two very wide hyperbolic frequency windows from 0.41 eV (99 THz) to 2.90 eV (701 THz), and from 3.63 eV (878 THz) to 5.54 eV (1340 THz). The former window has a large overlap with the visible spectrum, and the dissipation for most part of this window is very small. The window can be further tuned by the applied strain, such that at a chosen frequency, a transition between elliptic and hyperbolic character can be induced by strain. Our work discovers a highly anisotropic 2D metal with extraordinary properties, which holds great potential for electronic and optical applications.

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