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单质和二元单原子单层的厚度。

Thickness of elemental and binary single atomic monolayers.

作者信息

Hess Peter

机构信息

Institute of Physical Chemistry, University of Heidelberg, Im Neuenheimer Feld 253, D-69120 Heidelberg, Germany.

出版信息

Nanoscale Horiz. 2020 Mar 2;5(3):385-399. doi: 10.1039/c9nh00658c.

Abstract

The thickness of monolayers is a fundamental property of two-dimensional (2D) materials that has not found the necessary attention. It plays a crucial role in their mechanical behavior, the determination of related physical properties such as heat transfer, and especially the properties of multilayer systems. Measurements of the thickness of free-standing monolayers are widely lacking and notoriously too large. Consistent thicknesses have been reported for single layers of graphene, boronitrene, and SiC derived from interlayer spacing measured by X-ray diffraction in multilayer systems, first-principles calculations of the interlayer spacing, and tabulated van der Waals (vdW) diameters. Furthermore, the electron density-based volume model agrees with the geometric slab model for graphene and boronitrene. For other single-atom monolayers DFT calculations and molecular dynamics (MD) simulations deliver interlayer distances that are often much smaller than the vdW diameter, owing to further electrostatic and (weak) covalent interlayer interaction. Monolayers strongly bonded to a surface also show this effect. If only weak vdW forces exist, the vdW diameter delivers a reasonable thickness not only for free-standing monolayers but also for few-layer systems and adsorbed monolayers. Adding the usually known corrugation effect of buckled or puckered monolayers to the vdW diameter delivers an upper limit of the monolayer thickness. The study presents a reference database of thickness values for elemental and binary group-IV and group-V monolayers, as well as binary III-V and IV-VI compounds.

摘要

单层的厚度是二维(2D)材料的一个基本特性,但尚未得到应有的关注。它在材料的力学行为、相关物理性质(如热传递)的确定中起着关键作用,尤其是在多层系统的性质方面。目前广泛缺乏对独立单层厚度的测量,而且测量结果通常偏大。对于石墨烯、硼氮烯和碳化硅单层,通过多层系统中的X射线衍射测量层间距、层间距的第一性原理计算以及表格化的范德华(vdW)直径,已经报道了一致的厚度。此外,基于电子密度的体积模型与石墨烯和硼氮烯的几何平板模型一致。对于其他单原子单层,由于进一步的静电和(弱)共价层间相互作用,密度泛函理论(DFT)计算和分子动力学(MD)模拟得出的层间距离通常比vdW直径小得多。与表面强键合的单层也表现出这种效应。如果只存在弱vdW力,vdW直径不仅为独立单层,也为少层系统和吸附单层提供了合理的厚度。将通常已知的弯曲或褶皱单层的波纹效应加到vdW直径上,可得出单层厚度的上限。该研究给出了元素和二元IV族、V族单层以及二元III-V族和IV-VI族化合物的厚度值参考数据库。

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