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首页> 外文期刊>Diamond and Related Materials >Effect of microstructure and mechanical properties on the tribological and electrochemical performances of Si/DLC films under HCl corrosive environment
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Effect of microstructure and mechanical properties on the tribological and electrochemical performances of Si/DLC films under HCl corrosive environment

机译:微观结构和力学性能对HCL腐蚀环境下Si / DLC膜的摩擦学和电化学性能的影响

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摘要

Si-doped diamond-like carbon (Si/DLC) films appear very attractive due to their superior mechanical and tribological properties and chemical inertness. In the present work, Si/DLC films with silicon concentration from 1.64 to 15.32 at.% were fabricated on 304 stainless steel by adjusting Si target current using unbalanced magnetron sputtering system. The microstructure, surface morphology and mechanical properties of the films with different Si concentration, as well as the tribological and electrochemical properties of the films under HCl corrosive environment were systematically investigated. Results showed that Si doping increased the sp3 C-C content, hardness, and elastic modulus of as-fabricated films, lowered the residual stress, but deteriorated the adhesion strength. At the same time, the appropriate Si concentration was conducive to low surface roughness and dense microstructure. The Si/DLC films presented good tribological performances in 1 M HCl solution, including low friction coefficient and wear rate. The degradation of tribological properties was attributed to the synergistic effect of less solid lubrication, declined adhesion strength, worse resistance to elastic and plastic deformation. The wear mechanism was mainly dominated by abrasive wear. Furthermore, the Si/DLC film with 15.32 at.% Si provided the best corrosion resistance, which benefited from its dense structure, higher thickness, and the highest sp3 C-C content.
机译:掺硅类金刚石碳(Si/DLC)薄膜因其优越的机械性能、摩擦学性能和化学惰性而备受关注。在本工作中,硅浓度为1.64至15.32 at.%的Si/DLC薄膜采用非平衡磁控溅射系统,通过调节硅靶电流,在304不锈钢上制备了硅基复合材料。系统地研究了不同硅浓度薄膜的微观结构、表面形貌和力学性能,以及在盐酸腐蚀环境下薄膜的摩擦学和电化学性能。结果表明,Si掺杂提高了薄膜的sp3c-C含量、硬度和弹性模量,降低了残余应力,但降低了结合强度。同时,适当的硅浓度有利于获得较低的表面粗糙度和致密的微观结构。Si/DLC薄膜在1mhcl溶液中表现出良好的摩擦学性能,包括较低的摩擦系数和磨损率。摩擦学性能的退化归因于固体润滑减少、粘附强度下降、抗弹塑性变形能力变差的协同效应。磨损机制以磨粒磨损为主。此外,Si/DLC薄膜的15.32at.%硅具有最好的耐腐蚀性,这得益于其致密的结构、较高的厚度和最高的sp3 C-C含量。

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