State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics , Chinese Academy of Sciences , Shanghai 200050 , People's Republic of China.
Interface Focus. 2012 Jun 6;2(3):325-36. doi: 10.1098/rsfs.2012.0003. Epub 2012 Mar 21.
Although remarkable progress has been made on biomaterial research, the ideal biomaterial that satisfies all the technical requirements and biological functions is not available up to now. Surface modification seems to be a more economic and efficient way to adjust existing conventional biomaterials to meet the current and ever-evolving clinical needs. From an industrial perspective, plasma immersion ion implantation and deposition (PIII&D) is an attractive method for biomaterials owing to its capability of treating objects with irregular shapes, as well as the control of coating composition. It is well acknowledged that the physico-chemical characteristics of biomaterials are the decisive factors greatly affecting the biological responses of biomaterials including bioactivity, haemocompatibility and antibacterial activity. Here, we mainly review the recent advances in surface modification of biomaterials via PIII&D technology, especially titanium alloys and polymers used for orthopaedic, dental and cardiovascular implants. Moreover, the variations of biological performances depending on the physico-chemical properties of modified biomaterials will be discussed.
尽管在生物材料研究方面取得了显著进展,但目前还没有一种理想的生物材料能够满足所有的技术要求和生物学功能。表面改性似乎是一种更经济、更有效的方法,可以调整现有的常规生物材料,以满足当前和不断发展的临床需求。从工业角度来看,由于其能够处理形状不规则的物体以及控制涂层成分,等离子体浸没离子注入和沉积(PIII&D)是一种有吸引力的生物材料处理方法。人们普遍认为,生物材料的理化特性是极大影响生物材料生物反应的决定性因素,包括生物活性、血液相容性和抗菌活性。在这里,我们主要综述了通过 PIII&D 技术对生物材料进行表面改性的最新进展,特别是用于骨科、牙科和心血管植入物的钛合金和聚合物。此外,还将讨论根据改性生物材料的理化性质变化而产生的生物学性能变化。