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首页> 外文期刊>Applied Surface Science >The effects of phase transformation on the structure and mechanical properties of TiSiCN nanocomposite coatings deposited by PECVD method
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The effects of phase transformation on the structure and mechanical properties of TiSiCN nanocomposite coatings deposited by PECVD method

机译:相变对PECVD沉积TiSiCN纳米复合涂层结构和力学性能的影响

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摘要

In the present study, the effects of phase transformations on the structure and mechanical properties of TiSiCN coatings were investigated. TiSiCN nanocomposite coatings were deposited on AISI H13 hot-work tool steel by a pulsed direct current plasma-enhanced chemical vapor deposition process at 350 or 500 degrees C, using TiCl4 and SiCl4 as the precursors of Ti and Si, respectively, in a CH4/N-2/H-2/Ar plasma as the source of carbon and nitrogen and reducing environment. Some samples deposited at 350 degrees C were subsequently annealed at 500 degrees C under Ar atmosphere. Super hard self-lubricant TiSiCN coatings, having nanocomposite structure consisting of TiCN nanocrystals and amorphous carbon particles embedded in an amorphous SiCNx matrix, formed through spinodal decomposition in the specimens deposited or annealed at 500 degrees C. In addition, it was revealed that either uncomplete or relatively coarse phase segregation of titanium compounds was achieved during deposition at 350 degrees C and 500 degrees C, respectively. On the contrary, by deposition at 350 degrees C followed by annealing at 500 degrees C, a finer structure was obtained with a sensible improvement of the mechanical properties of coatings. Accordingly, the main finding of this work is that significant enhancement in key properties of TiSiCN coatings, such as hardness, adhesion and friction coefficient, can be obtained by deposition at low temperature and subsequent annealing at higher temperature, thanks to the formation of a fine grained nanocomposite structure. (C) 2018 Elsevier B.V. All rights reserved.
机译:在本研究中,研究了相变对TiSiCN涂层的结构和力学性能的影响。通过在350或500摄氏度下分别使用TiCl4和SiCl4作为Ti和Si的前体在CH4 / 3中通过脉冲直流等离子体增强化学气相沉积工艺将TiSiCN纳米复合涂层沉积在AISI H13热作工具钢上。 N-2 / H-2 / Ar等离子体是碳,氮和还原环境的来源。随后将一些在350摄氏度下沉积的样品在Ar气氛下在500摄氏度下进行退火。超硬自润滑TiSiCN涂层,由TiCN纳米晶体和嵌入无定形SiCNx基质中的无定形碳颗粒组成的纳米复合结构,是通过旋节线分解在500摄氏度下沉积或退火的样品中形成的。在沉积过程中,分别在350摄氏度和500摄氏度下,钛化合物的相分离或相对较粗的相分离。相反,通过在350℃下沉积然后在500℃下退火,获得了更精细的结构,并且显着改善了涂层的机械性能。因此,这项工作的主要发现是,由于形成了细小晶粒,可以在低温下沉积并随后在较高温度下退火,从而可以显着提高TiSiCN涂层的关键性能,例如硬度,附着力和摩擦系数。粒状纳米复合结构。 (C)2018 Elsevier B.V.保留所有权利。

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