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过渡金属四硼化物和三硼化物的稳定性和强度。

Stability and strength of transition-metal tetraborides and triborides.

机构信息

Theoretical Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.

出版信息

Phys Rev Lett. 2012 Jun 22;108(25):255502. doi: 10.1103/PhysRevLett.108.255502. Epub 2012 Jun 19.

Abstract

Using density functional theory, we show that the long-believed transition-metal tetraborides (TB(4)) of tungsten and molybdenum are in fact triborides (TB(3)). This finding is supported by thermodynamic, mechanical, and phonon instabilities of TB(4), and it challenges the previously proposed origin of superhardness of these compounds and the predictability of the generally used hardness model. Theoretical calculations for the newly identified stable TB(3) structure correctly reproduce their structural and mechanical properties, as well as the experimental x-ray diffraction pattern. However, the relatively low shear moduli and strengths suggest that TB(3) cannot be intrinsically stronger than c-BN. The origin of the lattice instability of TB(3) under large shear strain that occurs at the atomic level during plastic deformation can be attributed to valence charge depletion between boron and metal atoms, which enables easy sliding of boron layers between the metal ones.

摘要

利用密度泛函理论,我们证明了长期以来被认为是过渡金属四硼化物(TB(4))的钨和钼实际上是三硼化物(TB(3))。这一发现得到了 TB(4)热力学、力学和声子不稳定性的支持,这挑战了这些化合物超硬度的先前提出的起源和普遍使用的硬度模型的可预测性。对新确定的稳定 TB(3)结构的理论计算正确地再现了它们的结构和力学性质,以及实验的 X 射线衍射图案。然而,相对较低的剪切模量和强度表明,TB(3)不能内在地比 c-BN 更强。TB(3)在大剪切应变下的晶格不稳定性的起源可以归因于硼原子和金属原子之间的价电荷耗尽,这使得硼层在金属层之间的滑动变得容易。

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