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扭曲硅烯多层中的范霍夫奇点观察。

Observation of van Hove Singularities in Twisted Silicene Multilayers.

机构信息

Institute for Superconducting and Electronic Materials (ISEM), Australian Institute for Innovative Materials (AIIM), University of Wollongong , Wollongong, New South Wales 2525, Australia.

Institute of Physics, Chinese Academy of Sciences , Haidian District, Beijing 100080, China.

出版信息

ACS Cent Sci. 2016 Aug 24;2(8):517-21. doi: 10.1021/acscentsci.6b00152. Epub 2016 Jul 26.

Abstract

Interlayer interactions perturb the electronic structure of two-dimensional materials and lead to new physical phenomena, such as van Hove singularities and Hofstadter's butterfly pattern. Silicene, the recently discovered two-dimensional form of silicon, is quite unique, in that silicon atoms adopt competing sp(2) and sp(3) hybridization states leading to a low-buckled structure promising relatively strong interlayer interaction. In multilayer silicene, the stacking order provides an important yet rarely explored degree of freedom for tuning its electronic structures through manipulating interlayer coupling. Here, we report the emergence of van Hove singularities in the multilayer silicene created by an interlayer rotation. We demonstrate that even a large-angle rotation (>20°) between stacked silicene layers can generate a Moiré pattern and van Hove singularities due to the strong interlayer coupling in multilayer silicene. Our study suggests an intriguing method for expanding the tunability of the electronic structure for electronic applications in this two-dimensional material.

摘要

层间相互作用会扰乱二维材料的电子结构,从而产生新的物理现象,如范霍夫奇点和霍夫施塔特蝴蝶图案。硅烯是最近发现的硅的二维形式,它非常独特,因为硅原子采用了竞争的 sp(2)和 sp(3)杂化状态,导致了低翘曲的结构,有望具有较强的层间相互作用。在多层硅烯中,堆叠顺序为通过操纵层间耦合来调整其电子结构提供了一个重要但很少被探索的自由度。在这里,我们报告了通过层间旋转在多层硅烯中出现的范霍夫奇点。我们证明,即使堆叠硅烯层之间的大角度旋转(>20°)也可以由于多层硅烯中的强层间耦合而产生莫尔图案和范霍夫奇点。我们的研究为在这种二维材料中扩展电子结构的可调谐性以用于电子应用提供了一种有趣的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/507b/4999970/ae1ed367bb42/oc-2016-00152r_0002.jpg

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