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The structure and hardness of the highest boride of tungsten a borophene-based compound

机译:硼化物基化合物钨的最高硼化物的结构和硬度

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摘要

Two-dimensional systems have strengthened their position as a key materials for novel applications. Very recently, boron joined the distinguished group of elements confirmed to possess 2D allotropes, named borophenes. In this work, we explore the stability and hardness of the highest borides of tungsten, which are built of borophenes separated by metal atoms. We show that the WB3+x compounds have Vickers hardnesses approaching 40 GPa only for small values of x. The insertion of extra boron atoms is, in general, detrimental to the hardness of WB3 because it leads to the formation of quasi-planar boron sheets that are less tightly connected with the adjacent tungsten layers. Very high concentrations of boron (x ≈ 1), give rise to a soft (Vickers hardness of ~8 GPa) and unstable hP20-WB4 structure that can be considered to be built of quasi-planar boron α-sheets separated by graphitic tungsten layers. By contrast, we show that the formation of tungsten vacancies leads to structures, e.g. W0.75B3+x, with Vickers hardnesses that are not only similar in value to the experimentally reported load-independent hardnesses greater than 20 GPa, but are also less sensitive to variations in the boron content.
机译:二维系统已经巩固了其作为新颖应用关键材料的地位。最近,硼加入了具有2D同素异形体的著名元素组,即硼芬。在这项工作中,我们探索了钨的最高硼化物的稳定性和硬度,这些硼化物是由被金属原子分隔的硼苯所构成的。我们表明,仅对于较小的x值,WB3 + x化合物的维氏硬度接近40 GPa。通常,多余的硼原子的插入不利于WB3的硬度,因为它导致形成与相邻钨层不紧密连接的准平面硼片。很高浓度的硼(x≈1)会产生软的(维氏硬度〜8 GPa)和不稳定的hP20-WB4结构,可以认为是由石墨石墨钨层隔开的准平面硼α-板构成的。相比之下,我们表明钨空位的形成导致结构,例如。 W0.75B3 + x,维氏硬度不仅与实验报告的独立于载荷的硬度值相似,大于20 GPa,而且对硼含量的变化较不敏感。

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