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The Hardest Superconducting Metal Nitride

机译:最坚硬的超导金属氮化物

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摘要

Transition–metal (TM) nitrides are a class of compounds with a wide range of properties and applications. Hard superconducting nitrides are of particular interest for electronic applications under working conditions such as coating and high stress (e.g., electromechanical systems). However, most of the known TM nitrides crystallize in the rock–salt structure, a structure that is unfavorable to resist shear strain, and they exhibit relatively low indentation hardness, typically in the range of 10–20 GPa. Here, we report high–pressure synthesis of hexagonal δ–MoN and cubic γ–MoN through an ion–exchange reaction at 3.5 GPa. The final products are in the bulk form with crystallite sizes of 50 – 80 μm. Based on indentation testing on single crystals, hexagonal δ–MoN exhibits excellent hardness of ~30 GPa, which is 30% higher than cubic γ–MoN (~23 GPa) and is so far the hardest among the known metal nitrides. The hardness enhancement in hexagonal phase is attributed to extended covalently bonded Mo–N network than that in cubic phase. The measured superconducting transition temperatures for δ–MoN and cubic γ–MoN are 13.8 and 5.5 K, respectively, in good agreement with previous measurements.
机译:过渡金属(TM)氮化物是一类具有广泛特性和应用的化合物。硬超导氮化物在诸如涂层和高应力(例如机电系统)等工作条件下的电子应用中特别受关注。但是,大多数已知的TM氮化物都是在盐岩结构中结晶的,这种结构不利于抵抗剪切应变,并且它们的压痕硬度相对较低,通常在10至20 GPa的范围内。在这里,我们报告了通过3.5 GPa的离子交换反应高压合成六方δ-MoN和立方γ-MoN。最终产品为散装形式,微晶尺寸为50 –80μm。根据对单晶的压痕测试,六角形δ-MoN表现出出色的硬度,约30 GPa,比立方γ-MoN(约23 GPa)高30%,是迄今为止已知金属氮化物中最硬的。与立方相相比,六角相的硬度提高归因于共价键连接的Mo-N网络的扩展。测得的δ–MoN和立方γ–MoN的超导转变温度分别为13.8和5.5 K,与先前的测量结果非常吻合。

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