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首页> 外文期刊>CERAMICS INTERNATIONAL >Mechanical strength and origin of the strengthening effect of tantalum in superhard W0.5Ta0.5B monoboride
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Mechanical strength and origin of the strengthening effect of tantalum in superhard W0.5Ta0.5B monoboride

机译:超硬W0.5TA0.5B钽钽强化效应的机械强度及起源

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摘要

Tungsten borides with excellent mechanical properties have been recognized as a class of ultrahard compounds in various industrial applications. Here, motivated by the recent experimental work, a quantitative comparison analysis on the structure, mechanical strength, and electronic structure of the tantalum-strengthened superhard W0.5Ta0.5B monoboride and its parent material WB has been studied by first-principles calculations. Excellent agreements of the calculated lattice parameters and simulated X-ray diffraction between present results and experimental data have confirmed the crystal structure of the synthesized W0.5Ta0.5B. Compared to the WB, the calculated stress-strain curves show an enhanced shear strength and improved ductility of W0.5Ta0.5B on (100) and (010) crystal planes, originating from the reduction of antibonding states between the W-e(g) states which enables strenuous sliding of metal bilayer in W0.5Ta0.5B. Furthermore, the lattice instability of W0.5Ta0.5B under large shear strain with an intriguing sequential bond-breaking mode that is derived from the first breaking of zigzag B chains and the subsequent collapsing of WB7 and TaB7 polyhedrons by simultaneously breaking of B-W and B-Ta bonds. These findings shed strong light on the strengthening mechanism of W0.5Ta0.5B and the design for novel ultra-incompressible and superhard solids in transition metal monoborides.
机译:具有优异的机械性能的钨硼硼已经被认为是各种工业应用中的超大化合物。这里,通过最近的实验工作,通过第一原理计算研究了钽加强的超硬W0.5TA0.5B单卤化物和其母体材料的结构,机械强度和电子结构的定量比较分析。本结果和实验数据之间计算出的晶格参数和模拟X射线衍射的良好协议证实了合成的W0.5ta0.5b的晶体结构。与WB相比,计算的应力 - 应变曲线显示出增强的剪切强度和改善W0.5TA0.5b的延展性(100)和(010)晶体平面,源自我们(g)州之间的抗抗抗抗抗体状态这使得能够在W0.5TA0.5B中剧烈滑动金属双层。此外,在大剪切菌株下的W0.5ta0.5b的晶格不稳定性,其具有诱导顺序粘合模式,通过同时破坏BW和B,衍生自拉杆B链的第一次断裂和随后的WB7和TAB7多面体的折叠-TA债券。这些发现对W0.5TA0.5B的强化机制和过渡金属单卤代硼中的新型超不可压缩和超硬固体设计的强烈光。

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