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类金刚石碳涂层的生物医学应用:综述

Biomedical applications of diamond-like carbon coatings: a review.

作者信息

Roy Ritwik Kumar, Lee Kwang-Ryeol

机构信息

Future Technology Research Division, Korea Institute of Science and Technology, P.O. Box 131, Cheongryang, Seoul 130-650, Korea.

出版信息

J Biomed Mater Res B Appl Biomater. 2007 Oct;83(1):72-84. doi: 10.1002/jbm.b.30768.

Abstract

Owing to its superior tribological and mechanical properties with corrosion resistance, biocompatibility, and hemocompatibility, diamond-like carbon (DLC) has emerged as a promising material for biomedical applications. DLC films with various atomic bond structures and compositions are finding places in orthopedic, cardiovascular, and dental applications. Cells grew on to DLC coating without any cytotoxity and inflammation. DLC coatings in orthopedic applications reduced wear, corrosion, and debris formation. DLC coating also reduced thrombogenicity by minimizing the platelet adhesion and activation. However, some contradictory results (Airoldi et al., Am J Cardiol 2004;93:474-477, Taeger et al., Mat-wiss u Werkstofftech 2003;34:1094-1100) were also reported that no significant improvement was observed in the performance of DLC-coated stainless stent or DLC-coated femoral head. This controversy should be discussed based on the detailed information of the coating such as atomic bond structure, composition, and/or electronic structure. In addition, instability of the DLC coating caused by its high level of residual stress and poor adhesion in aqueous environment should be carefully considered. Further in vitro and in vivo studies are thus required to confirm its use for medical devices.

摘要

由于其具有优异的摩擦学和机械性能,具备耐腐蚀、生物相容性和血液相容性,类金刚石碳(DLC)已成为生物医学应用中一种很有前景的材料。具有各种原子键结构和成分的DLC薄膜正在骨科、心血管和牙科应用中找到用武之地。细胞在DLC涂层上生长,未出现任何细胞毒性和炎症。骨科应用中的DLC涂层减少了磨损、腐蚀和碎屑形成。DLC涂层还通过最小化血小板粘附和活化降低了血栓形成倾向。然而,也有一些相互矛盾的结果(Airoldi等人,《美国心脏病学杂志》2004年;93:474 - 477,Taeger等人,《材料科学与材料技术》2003年;34:1094 - 1100)报道,在DLC涂层不锈钢支架或DLC涂层股骨头的性能方面未观察到显著改善。应基于涂层的详细信息,如原子键结构、成分和/或电子结构来讨论这一争议。此外,还应仔细考虑DLC涂层因其高残余应力水平和在水环境中附着力差而导致的不稳定性。因此,需要进一步的体外和体内研究来确认其在医疗设备中的应用。

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