阴极电弧等离子体分离流中Ti-Al-N体系形成涂层的特征

IF 0.5 Q4 PHYSICS, CONDENSED MATTER
S. D. Latushkina, O. I. Posylkina, V. A. Kukareko, A. V. Kushnerov
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引用次数: 0

摘要

研究了钛铝金属阴极同时溅射时阴极-电弧等离子体分离流沉积工艺参数(阴极电弧放电电流、衬底偏置电位和反应气体压力)对Ti-Al-N体系元素和物相组成以及镀层性能的影响。在-80 V的偏置电位下,通过改变钛和铝的放电电流,将多组分涂层Al/(Al + Ti)中的铝含量从13%改变到67%,导致涂层的相组成由(Ti,Al)N为基础的均匀固溶体演变为TiN、AlN和Ti3AlN相的混合物。在相同铝浓度范围内,将衬底上的偏置电位降低至-60 V,镀层的相组成由(Ti,Al)N固溶体转变为以(Ti,Al)N相和六方氮化物Ti3Al2N2为基础的两相溶液。结果表明,当形成Al/(Al + Ti) = 55 at %的六方Ti3Al2N2相时,涂层的纳米硬度达到了38 GPa的最大值。当铝Al/(Al + Ti)在涂层中的比例增加到67 at %时,涂层的纳米硬度下降到12 GPa,这是由于涂层中铝的比例增加以及其相组成从固溶体(Ti,Al) N转变为TiN, AlN和Ti3AlN相的混合物。结果表明,当铝含量为Al/(Al + Ti) 28 ~ 45 at %时,涂层的耐蚀性最好,在腐蚀电位正值处阳极溶解电流较低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Features of the Formation of Coatings Based on the Ti–Al–N System from Separated Flows of Cathode-Arc Plasma

Features of the Formation of Coatings Based on the Ti–Al–N System from Separated Flows of Cathode-Arc Plasma

The influence of technological parameters of deposition from separated flows of cathode-arc plasma during simultaneous sputtering of metal cathodes of titanium and aluminum (arc discharge currents on the cathodes, bias potential on the substrate, and reaction gas pressure) on the elemental and phase composition, as well as the properties of coatings of the Ti–Al–N system, was studied. Varying the aluminum content in the multicomponent coating Al/(Al + Ti) from 13 to 67 at % by changing the discharge current of titanium and aluminum at a bias potential of –80 V leads to the evolution of the phase composition of the coatings from a homogeneous solid solution based on (Ti,Al)N to a mixture of phases TiN, AlN, and Ti3AlN. Reducing the bias potential on the substrate to –60 V in the same aluminum concentration range results in the formation of coatings, which are characterized by a change in phase composition from a (Ti,Al)N solid solution to a two-phase solution based on (Ti,Al)N phases and hexagonal nitride Ti3Al2N2. It has been shown that the maximum value of nanohardness of coatings, equal to 38 GPa, is observed when the hexagonal Ti3Al2N2 phase (with the Al/(Al + Ti) ratio = 55 at %) is formed in their composition. An increase in the proportion of aluminum Al/(Al + Ti) in the coating to 67 at % leads to a decrease in their nanohardness to 12 GPa, which is due to both an increase in the proportion of aluminum in the coating and a change in its phase composition from the solid solution (Ti,Al) N to a mixture of TiN, AlN, and Ti3AlN phases. It has been established that the best corrosion resistance is characterized by coatings with an aluminum content Al/(Al + Ti) from 28 to 45 at %, as evidenced by the low values of anodic dissolution currents at the positive values of corrosion potentials.

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来源期刊
CiteScore
0.90
自引率
25.00%
发文量
144
审稿时长
3-8 weeks
期刊介绍: Journal of Surface Investigation: X-ray, Synchrotron and Neutron Techniques publishes original articles on the topical problems of solid-state physics, materials science, experimental techniques, condensed media, nanostructures, surfaces of thin films, and phase boundaries: geometric and energetical structures of surfaces, the methods of computer simulations; physical and chemical properties and their changes upon radiation and other treatments; the methods of studies of films and surface layers of crystals (XRD, XPS, synchrotron radiation, neutron and electron diffraction, electron microscopic, scanning tunneling microscopic, atomic force microscopic studies, and other methods that provide data on the surfaces and thin films). Articles related to the methods and technics of structure studies are the focus of the journal. The journal accepts manuscripts of regular articles and reviews in English or Russian language from authors of all countries. All manuscripts are peer-reviewed.
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