[1] E SOROKA, B LYASHENKO, S QIAO et al. Tribological behaviour and cutting performance of PVD-TiN coating/substrate system with discontinuous surface architecture. Rare Metal Materials and Engineering, 580-584(2011).
[2] Z K CHANG, X S WAN, Z L PEI et al. Microstructure and mechanical properties of CrN coating deposited by arc ion plating on Ti6Al4V substrate. Surface & Coatings Technology, 4690-4696(2011).
[3] G BERTRAND, C SAVALL, C MEUNIER et al. Properties of reactively RF magnetron-sputtered chromium nitride coatings. Surface & Coatings Technology, 323-329(1997).
[4] L WANG, G ZHANG, R WOOD et al. Fabrication of CrAlN nanocomposite films with high hardness and excellent anti-wear performance for gear application. Surface & Coatings Technology, 3517-3524(2010).
[5] M W KIM, K H KIM, M C KANG et al. Mechanical properties and cutting performance of Cr-Al-N hybrid coated micro-tool for micro high-speed machining of flexible fine die.. Current Applied Physics(2012).
[6] X REN, H ZHU, M LIU et al. Comparison of microstructure and tribological behaviors of CrAlN and CrN film deposited by DC magnetron sputtering. Rare Metal Materials and Engineering, 1100-1106(2018).
[7] X Z DING, X T ZENG, Y C LIU et al. Cr1-xAlxN coatings deposited by lateral rotating cathode arc for high speed machining applications. Thin Solid Films, 1710-1715(2007).
[8] J L MO, M H ZHU, B LEI et al. Comparison of tribological behaviours of AlCrN and TiAlN coatings-deposited by physical vapor deposition. Wear, 1423-1429(2007).
[9] H SCHEERER, H HOCHE, E BROSZEIT et al. Effects of the chromium to aluminum content on the tribology in dry machining using (Cr,Al)N coated tools. Surface & Coatings Technology, 203-207(2005).
[10] B JFCA, C WA, A JCC et al. Structural, mechanical and tribological behavior of TiCN, CrAlN and BCN coatings in lubricated and non-lubricated environments in manufactured devices. Materials Chemistry and Physics(2020).
[11] Y J MO, M L WANG, W J CHEN. Composition, structure and properties of the Cr1-xAlxN hard films deposited by arc ion plating. Journl of Inorgamic Materials, 675-681(2020).
[12] J ROBERTSON. Diamond-like amorphous carbon. Materials Science & Engineering R, 129-281(2002).
[13] W TILLMANN, D STANGIER, P SCHRDER et al. Investigation and optimization of the tribo-mechanical properties of CrAlCN coatings using design of experiments. Surface & Coatings Technology, 147-157(2016).
[14] M ZHANG, F ZHOU, H FANG et al. Structure and tribological properties of CrTiAlCN coatings with various carbon contents. Journal of Materials Engineering and Performance, 1509-1521(2019).
[15] G Q LIN, Y H ZHAO, H M GUO et al. Experiments and theoretical explanation of droplet elimination phenomenon in pulsed-bias arc deposition. Acta Ophthalmologica, 288-303(2004).
[17] W DAI, Z HE, G WU et al. Effect of bias voltage on growth property of Cr-DLC film prepared by linear ion beam deposition technique. Vacuum, 231-235(2010).
[18] A C FERRARI. Determination of bonding in diamond-like carbon by Raman spectroscopy. Diam. Relat. Mater., 1053-1061(2002).
[19] Y ZHOU, P GUO, L SUN et al. Microstructure and property evolution of diamond-like carbon films co-doped by Al and Ti with different ratios. Surface & Coatings Technology, 83-90(2019).
[20] J H CHOI, S C LEE, K R LEE. A first-principles study on the bond characteristics in carbon containing Mo, Ag, or Al impurity atoms. Carbon, 185-188(2007).
[21] D WU, S REN, J PU et al. A comparative study of tribological characteristics of hydrogenated DLC film sliding against ceramic mating materials for helium applications. Applied Surface Science, 884-894(2018).