Effect of Target Power on Microstructure, Tribological Performance and Biocompatibility of Magnetron Sputtered Amorphous Carbon Coatings

Author:

Dhandapani Vishnu Shankar12ORCID,Subbiah Ramesh34ORCID,Thangavel Elangovan5,Kim Chang-Lae6ORCID,Kang Kyoung-Mo7,Veeraraghavan Veeravazhuthi8,Park Kwideok34ORCID,Kim Dae-Eun7ORCID,Park Dongkyou1ORCID,Kim Byungki2ORCID

Affiliation:

1. Department of Electromechanical Convergence Engineering, Korea University of Technology and Education, Cheonan 31253, Republic of Korea

2. School of Mechatronics Engineering, Korea University of Technology and Education, Cheonan 31253, Republic of Korea

3. Center for Biomaterials, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea

4. Department of Biomedical Engineering, Korea University of Science and Technology (UST), Daejon 34113, Republic of Korea

5. Smart Energy Material Laboratory (SEML), Department of Energy Science and Technology, Periyar University, Salem 636011, India

6. Department of Mechanical Engineering, Chosun University, Gwangiu 61452, Republic of Korea

7. Department of Mechanical Engineering, Yonsei University, Seoul 03722, Republic of Korea

8. PG & Research Department of Physics, PSG College of Arts & Science, Coimbatore 641014, India

Abstract

The tribological properties and preosteoblast behavior of an RF magnetron-sputtered amorphous carbon coating on a Si (100) substrate were evaluated. The graphite target power was varied from 200 to 500 W to obtain various coating structures. The amorphous nature of the coatings was confirmed via Raman analysis. The contact angle also increased from 58º to 103º, which confirmed the transformation of the a-C surface from a hydrophilic to hydrophobic nature with an increasing graphite target power. A minimum wear rate of about 4.73 × 10−8 mm3/N*mm was obtained for an a-C coating deposited at a 300 W target power. The 300 W and 400 W target power coatings possessed good tribological properties, and the 500 W coating possessed better cell viability and adhesion on the substrate. The results suggest that the microstructure, wettability, tribological behavior and biocompatibility of the a-C coating were highly dependent on the target power of the graphite. A Finite Element Analysis (FEA) showed a considerable increase in the Von Mises stress as the mesh size decreased. Considering both the cell viability and tribological properties, the 400 W target power coating was identified to have the best tribological property as well as biocompatibility.

Funder

National Research Foundation of Korea

Technology Innovation Program

Priority Research Program, the BK-21 four program

Ministry of Science

Publisher

MDPI AG

Subject

General Materials Science

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