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首页> 外文期刊>Materials Chemistry and Physics >Effect of nitrogen flow rate on the structure and mechanical properties of ZrN thin films on Si(1 0 0) and stainless steel substrates
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Effect of nitrogen flow rate on the structure and mechanical properties of ZrN thin films on Si(1 0 0) and stainless steel substrates

机译:氮气流量对Si(1 0 0)和不锈钢衬底上ZrN薄膜的结构和力学性能的影响

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摘要

Nanocrystalline ZrN films were successfully deposited on Si(1 0 0) and AISI 304 stainless steel substrates using hollow cathode discharge ion-plating (HCD-IP). The effect of nitrogen flow rate (ranging from 5 to 35 sccm) was investigated on the N/Zr ratio, structure, and mechanical properties of the ZrN films. The results showed that the variation of nitrogen flow rate did not significantly affect the film thickness, preferred orientation and hardness. The major effects of the nitrogen flow rate were on the N/Zr ratio, packing factor, and grain size of the ZrN films. The N/Zr ratio increased (0.6-0.9) with increasing nitrogen flow rate. The grain sizes of the ZrN films, measured by both X-ray diffraction (XRD) and scanning electron microscopy (SEM), ranging from 15 to 30 nm, generally increased with increasing nitrogen flow rate. The hardness of the nanocrystalline ZrN films, ranging from 23.3 to 26.6 GPa, was not related to the variation of the residual stress. The deformation mechanism of the nanocrystalline ZrN films may be through grain rotation or grain boundary sliding instead of slip by dislocations. Since the electric conductivity of 304 stainless steel is higher than that of Si, the stainless steel substrate can attract more Zr ions than Si substrate. This led to larger deposition rate, roughness, and residual stress for the ZrN film deposited on stainless steel than on Si substrate.
机译:使用空心阴极放电离子镀(HCD-IP)将纳米晶ZrN薄膜成功沉积在Si(1 0 0)和AISI 304不锈钢基底上。研究了氮气流速(5至35 sccm)对ZrN膜的N / Zr比,结构和力学性能的影响。结果表明,氮气流量的变化并没有显着影响膜的厚度,优选的取向和硬度。氮气流量的主要影响因素是N / Zr比,堆积系数和ZrN薄膜的晶粒尺寸。 N / Zr比随氮流量的增加而增加(0.6-0.9)。通过X射线衍射(XRD)和扫描电子显微镜(SEM)测量的ZrN膜的晶粒尺寸通常在15至30nm范围内,随氮流量的增加而增加。 ZrN纳米晶薄膜的硬度在23.3至26.6 GPa之间,与残余应力的变化无关。纳米晶ZrN薄膜的变形机理可能是通过晶粒旋转或晶界滑动而不是位错滑移。由于304不锈钢的电导率高于Si,因此不锈钢基板比Si基板能吸收更多的Zr离子。这导致沉积在不锈钢上的ZrN膜比沉积在Si衬底上的ZrN膜具有更大的沉积速率,粗糙度和残余应力。

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