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Enhancement of surface mechanical properties by using TiN[BCN/BN]_n/c-BN multilayer system

机译:使用TiN [BCN / BN] _n / c-BN多层体系增强表面力学性能

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摘要

The aim of this work is to improve the mechanical properties of AISI 4140 steel substrates by using a TiN[BCN/BN]_n/c-BN multilayer system as a protective coating. TiN[BCN/BN]_n/c-BN multilayered coatings via reactive r.f. magnetron sputtering technique were grown, systematically varying the length period (Λ) and the number of bilayers (n) because one bilayer (n = 1) represents two different layers (t_(Bcn) + t_(BN)), thus the total thickness of the coating and all other growth parameters were maintained constant. The coatings were characterized by Fourier transform infrared spectroscopy showing bands associated with h-BN bonds and c-BN stretching vibrations centered at 1400 cm~(-1) and 1100 cm~(-1), respectively. Coating composition and multilayer modulation were studied via secondary ion mass spectroscopy. Atomic force microscopy analysis revealed a reduction in grain size and roughness when the bilayer number (n) increased and the bilayer period decreased. Finally, enhancement of mechanical properties was determined via nanoindentation measurements. The best behavior was obtained when the bilayer period (Λ) was 80 nm (n = 25), yielding the relative highest hardness (~30 GPa) and elastic modulus (230 GPa). The values for the hardness and elastic modulus are 1.5 and 1.7 times greater than the coating with n = l, respectively. The enhancement effects in multilayered coatings could be attributed to different mechanisms for layer formation with nanometric thickness due to the Hall-Petch effect; because this effect, originally used to explain increased hardness with decreasing grain size in bulk polycrystalline metals, has also been used to explain hardness enhancements in multilayered coatings taking into account the thickness reduction at individual single layers that make up the multilayered system. The Hall-Petch model based on dislocation motion within layered and across layer interfaces has been successfully applied to multilayered coatings to explain this hardness enhancement.
机译:这项工作的目的是通过使用TiN [BCN / BN] _n / c-BN多层系统作为保护涂层来改善AISI 4140钢基底的机械性能。 TiN [BCN / BN] _n / c-BN多层涂层通过反应性射频生长磁控溅射技术,系统地改变长度周期(Λ)和双层数(n),因为一个双层(n = 1)代表两个不同的层(t_(Bcn)+ t_(BN)),因此总厚度涂层的厚度和所有其他生长参数保持恒定。通过傅立叶变换红外光谱对涂层进行表征,显示与h-BN键和c-BN拉伸振动相关的谱带分别集中在1400 cm〜(-1)和1100 cm〜(-1)。通过二次离子质谱研究了涂层组成和多层调制。原子力显微镜分析显示,当双层数(n)增加而双层周期减少时,晶粒尺寸和粗糙度减小。最后,通过纳米压痕测量确定机械性能的增强。当双层周期(Λ)为80 nm(n = 25)时,可获得最佳性能,从而获得相对最高的硬度(〜30 GPa)和弹性模量(230 GPa)。硬度和弹性模量的值分别是n = 1的涂层的1.5倍和1.7倍。多层涂层中的增强效果可能归因于霍尔-Petch效应形成纳米厚度层的不同机制。因为这种效应最初是用来解释块状多晶金属中硬度随晶粒尺寸减小而增加的,但考虑到组成多层系统的单个单层的厚度减小,该效应也已用于解释多层涂层的硬度提高。基于分层和跨层界面内的位错运动的霍尔-帕奇(Hall-Petch)模型已成功应用于多层涂层,以解释这种硬度的提高。

著录项

  • 来源
    《Applied Surface Science》 |2010年第3期|p.1098-1104|共7页
  • 作者单位

    Laboratorio de Recubrimientos Duros, CDT-ASTIN SENA Cali, Colombia;

    Grupo de Peliculas Delgadas, Universidad del Valle, Cali, Colombia,Universidad del Valle, Grupo de Peliculas Delgadas, Calle 13 # 100 - 00 Melemdez, Cali, Valle, Colombia;

    Grupo de Peliculas Delgadas, Universidad del Valle, Cali, Colombia;

    Centro de Investigation y de Estudios Avanzados del IPN, Unidad Queretaro, Mexico, Mexico;

    Department de Fisica Aplicada i 6ptica, Universitat de Barcelona, Catalunya, Spain;

    Department de Fisica Aplicada i 6ptica, Universitat de Barcelona, Catalunya, Spain;

    Grupo de Peliculas Delgadas, Universidad del Valle, Cali, Colombia,Centro de Excelencia en Nuevos Materiales, CENM, Cali, Colombia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    multilayer coatings; magnetron sputtering; mechanical properties;

    机译:多层涂料;磁控溅射;机械性能;
  • 入库时间 2022-08-18 03:07:33

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