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By Kash L. Mittal

A moment overseas symposium on adhesion points of skinny motion pictures, held in Orlando, Florida in December 2003, accelerated from the 1st by means of contemplating metalized plastics and adhesion dimension. The 17 papers that caught to the publishing approach transparent to the tip think of such issues as adhesion houses of functionally gradient diamond- like carbon nano-composite motion pictures, characterizing polyethylene-metal composite skinny movies deposited by means of evaporation, the contribution of chemical reactions among aluminum atoms and varieties of useful teams to the adhesion of aluminum-polymer structures, and severe occasions saw on copper movies on glass substrate within the micro-scratch attempt. there is not any index. VSP is a subsidiary of Brill.

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In this system, a diamond stylus of 15 pm radius is drawn on the coating surface at a gradually increasing load from 0 to 500 mN. Meanwhile, the stylus oscillates up to a distance of 50 pm (the scanning amplitude) in the direction perpendicular to the drawing direction. The scanning capability of the system allows to scan a larger area (50 pm times the scratching distance) as compared to the traditional “single line” scratch. This greatly improves the reliability of the test. In this experiment, the scanning amplitude was set at 50 pm at a scratch speed of 10 p d s for all samples.

Detailed explanation for the formation of nanocrystalline structures was reported in Refs [12, 221. 2. Adhesion strength Figure 3 illustrates the influence of plasma cleaning on the adhesion strength in the case of constant (-150 V) bias and bias-graded deposition. The adhesion strength of both coatings follows the same trend: when the plasma cleaning power is lower than 200 W, the critical load increases with increase of applied power. This was due to the effect of plasma cleaning through removal of surface cobalt contamination together with other contaminants such as oxides.

F. Attar and T. Johannesson, Su$ Coating. Technol. 78, 87-102 (1996). 17. H. Ronkainen, S. Varjus, J. Koskinen and K. Holmberg, Wear 249,260-266 (2001). 18. Y. Liu, A. Erdemir and E. I. Meletis, Su$ Coating. Technol. 94-95, 4 6 3 4 6 8 (1997). 19. A. Erdemir, C. Bindal, J. Pagan and P. Wilbur, Sur$ Coating. Technol. 77,559-563 (1995). 20. V. V. Ramana and K. Saraswathi, J. Ind. Chem. Soc. 70,274-275 (1993). Adhesion Aspects of Thin Films. Vol. 2, pp. 37-47 Ed. L. Mittal 0VSP 2005 Adhesion improvement of magnetron-sputtered amorphous carbon coating on cemented carbide SAM ZHANG" and XUAN LAM BUI School of Mechanical and Production Engineering, Nanyang Technological Universiw, 50 Nanyang Avenue, Singapore 639798, Singapore Abstract-Magnetron sputtering was used to deposit amorphous carbon coatings on cemented carbide (WC-6% Co) with extremely high adhesion strength.

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