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氮气流对TiN涂层的化学计量组成、结构、力学性能和微观摩擦学性能的影响

The Influence of Nitrogen Flow on the Stoichiometric Composition, Structure, Mechanical, and Microtribological Properties of TiN Coatings.

作者信息

Lapitskaya Vasilina, Nikolaev Andrey, Khabarava Anastasiya, Sadyrin Evgeniy, Antipov Pavel, Abdulvakhidov Kamaludin, Aizikovich Sergei, Chizhik Sergei

机构信息

Nanoprocesses and Technology Laboratory, A.V. Luikov Heat and Mass Transfer Institute, National Academy of Science of Belarus, 15 P. Brovki str., 220072 Minsk, Belarus.

Research and Education Center "Materials", Don State Technical University, 1 Gagarin sq., 344003 Rostov-on-Don, Russia.

出版信息

Materials (Basel). 2023 Dec 26;17(1):120. doi: 10.3390/ma17010120.

Abstract

Utilizing reactive DC magnetron sputtering method, TiN coatings were deposited on the silicon substrates at different nitrogen flows and powers. A study of the X-ray phase composition of the coatings was carried out. The stoichiometric composition of the coatings was determined using energy dispersive x-ray spectroscopy. The structure of the surface, cross-section, and thickness of the coatings were determined using scanning electron (SEM) and atomic force microscopy (AFM). A significant change in the surface structure of TiN coatings was established with changes in deposition power and nitrogen flow. SEM images of cross-sections of all coated samples showed that the formation of coatings occurs in the form of a columnar structure with a perpendicular orientation relative to the silicon substrate. The mechanical properties (elastic modulus and microhardness ) of TiN coatings of the first group demonstrate a maximum at a nitrogen flow of 3 sccm and are 184 ± 11 GPa and 15.7 ± 1.3 GPa, respectively. In the second group, the values of and increase due to a decrease in the size of the structural elements of the coating (grains and crystallites). In the third group, and decrease. Microtribological tests were carried out in 4 stages: at a constant load, multi-cycle for 10 and 100 cycles, and with increasing load. The coefficient of friction (CoF) and specific volumetric wear ω depend on the roughness, topology, and mechanical properties of the resulting coatings. Fracture toughness was determined using nanoscratch and depends on the mechanical properties of TiN coatings. Within each group, coatings with the best mechanical and microtribological properties were described: in the first group-TiN coating at 3 sccm (with (29.6 ± 0.1) at.% N), in the second group-TiN coating at 2 sccm (with (40.8 ± 0.2) at.% N), and in the third group-TiN coating at 1 sccm (c (37.3 ± 0.2) at.% N).

摘要

采用反应直流磁控溅射法,在不同氮气流量和功率下,在硅衬底上沉积TiN涂层。对涂层的X射线相组成进行了研究。利用能量色散X射线光谱法测定了涂层的化学计量组成。使用扫描电子显微镜(SEM)和原子力显微镜(AFM)测定了涂层的表面结构、横截面和厚度。随着沉积功率和氮气流量的变化,TiN涂层的表面结构发生了显著变化。所有涂层样品横截面的SEM图像表明,涂层以柱状结构的形式形成,相对于硅衬底呈垂直取向。第一组TiN涂层的力学性能(弹性模量和显微硬度)在氮气流量为3 sccm时达到最大值,分别为184±11 GPa和15.7±1.3 GPa。在第二组中,由于涂层结构元素(晶粒和微晶)尺寸的减小,弹性模量和显微硬度的值增加。在第三组中,弹性模量和显微硬度降低。微摩擦学测试分4个阶段进行:在恒定载荷下、多循环10次和100次以及增加载荷。摩擦系数(CoF)和比体积磨损率ω取决于所得涂层的粗糙度、拓扑结构和力学性能。使用纳米划痕法测定断裂韧性,其取决于TiN涂层的力学性能。在每组中,描述了具有最佳力学和微摩擦学性能的涂层:第一组为3 sccm时的TiN涂层(含(29.6±0.1)原子%的N),第二组为2 sccm时的TiN涂层(含(40.8±0.2)原子%的N),第三组为1 sccm时的TiN涂层(含(37.3±0.2)原子%的N)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e56/10779842/8ddf371b2f84/materials-17-00120-g001.jpg

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