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Influence of the bilayer thickness of nanostructured multilayer MoN/CrN coating on its microstructure, hardness, and elemental composition

机译:纳米结构多层MON / CRN涂层双层厚度对其微观结构,硬度和元素组成的影响

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摘要

Multilayer nanostructured coatings consisting of alternating MoN and CrN layers were obtained by vacuum cathode evaporation under various conditions of deposition. The transition from micron sizes of bilayers to the nanometer scale in the coatings under investigation leads to an increase in hardness from 15 to 35.5 GPa (with a layer thickness of about 35 nm). At the same time, when the number of bilayers in the coating decreases, the average Vickers hardness increases from 1267 HV0.05 to 3307 HV0.05. An increase in the value of the potential supplied to the substrate from-20 to-150 V leads to the formation of growth textures in coating layers with the [100] axis, and to an increase in the intensity of reflections with increasing bilayer thickness. Elemental analysis carried out with the help of Rutherford backscattering, secondary ion mass spectrometry and energy dispersion spectra showed a good separation of the MoN and CrN layers near the surface of the coatings.
机译:通过在各种沉积条件下通过真空阴极蒸发获得包括交替MON和CRN层的多层纳米结构涂层。 从微米尺寸的双层转变为在调查的涂层中的纳米尺度导致15至35.5GPa的硬度增加(层厚度为约35nm)。 同时,当涂层中双层的数量降低时,平均维氏硬度从1267 HV0.05增加到3307 HV0.05。 从-20至150V提供给基板的电位值的增加导致涂层层中的生长纹理与[100]轴,并增加双层厚度的反射强度的增加。 在Rutherford反向散射的帮助下进行的元素分析,二次离子质谱和能量分散谱显示涂层表面附近的MON和CRN层的良好分离。

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