State Key Laboratory of High Performance Complex Manufacturing, Central South University, Changsha 410083, China.
The Key Laboratory of Carcinogenesis of the Chinese Ministry of Health, Xiangya Hospital, Central South University, Changsha 410008, China; The Key Laboratory of Carcinogenesis and Cancer Invasion of the Chinese Ministry of Education, Cancer Research Institute, Central South University, Changsha 410078, China.
Acta Biomater. 2017 Oct 1;61:1-20. doi: 10.1016/j.actbio.2017.05.020. Epub 2017 May 10.
The high brittleness and low strength of bioactive ceramics have severely restricted their application in bone repair despite the fact that they have been regarded as one of the most promising biomaterials. In the last few years, low-dimensional nanomaterials (LDNs), including carbon nanotubes, graphene and boron nitride nanotubes, have gained increasing attention owing to their favorable biocompatibility, large surface specific area and super mechanical properties. These qualities make LDNs potential nanofillers in reinforcing bioactive ceramics. In this review, the types, characteristics and applications of the commonly used LDNs in ceramic composites are summarized. In addition, the fabrication methods for LDNs/ceramic composites, such as hot pressing, spark plasma sintering and selective laser sintering, are systematically reviewed and compared. Emphases are placed on how to obtain the uniform dispersion of LDNs in a ceramic matrix and maintain the structural stability of LDNs during the high-temperature fabrication process of ceramics. The reinforcing mechanisms of LDNs in ceramic composites are then discussed in-depth. The in vitro and in vivo studies of LDNs/ceramic in bone repair are also summarized and discussed. Finally, new developments and potential applications of LDNs/ceramic composites are further discussed with reference to experimental and theoretical studies.
Despite bioactive ceramics having been regarded as promising biomaterials, their high brittleness and low strength severely restrict their application in bone scaffolds. In recent years, low-dimensional nanomaterials (LDNs), including carbon nanotubes, graphene and boron nitride nanotubes, have shown great potential in reinforcing bioactive ceramics owing to their unique structures and properties. However, so far it has been difficult to maintain the structural stability of LDNs during fabrication of LDNs/ceramic composites, due to the lengthy, high-temperature process involved. This review presents a comprehensive overview of the developments and applications of LDNs in bioactive ceramics. The newly-developed fabrication methods for LDNs/ceramic composites, the reinforcing mechanisms and the in vitro and in vivo performance of LDNs are also summarized and discussed in detail.
尽管生物活性陶瓷被认为是最有前途的生物材料之一,但它们的高脆性和低强度严重限制了它们在骨修复中的应用。在过去的几年中,由于具有良好的生物相容性、大的比表面积和超机械性能,低维纳米材料(LDNs),包括碳纳米管、石墨烯和氮化硼纳米管,引起了越来越多的关注。这些特性使 LDNs 成为增强生物活性陶瓷的潜在纳米填料。在这篇综述中,总结了常用 LDNs 在陶瓷复合材料中的类型、特性和应用。此外,还系统地综述和比较了 LDNs/陶瓷复合材料的制备方法,如热压、火花等离子烧结和选择性激光烧结。重点放在如何在陶瓷基质中获得 LDNs 的均匀分散,并在陶瓷的高温制备过程中保持 LDNs 的结构稳定性。然后深入讨论了 LDNs 在陶瓷复合材料中的增强机制。还总结和讨论了 LDNs/陶瓷在骨修复中的体外和体内研究。最后,参考实验和理论研究,进一步讨论了 LDNs/陶瓷复合材料的新发展和潜在应用。
尽管生物活性陶瓷被认为是有前途的生物材料,但它们的高脆性和低强度严重限制了它们在骨支架中的应用。近年来,由于具有独特的结构和性能,低维纳米材料(LDNs),包括碳纳米管、石墨烯和氮化硼纳米管,在增强生物活性陶瓷方面显示出巨大的潜力。然而,到目前为止,由于制造 LDNs/陶瓷复合材料的过程冗长且温度高,很难在制造过程中保持 LDNs 的结构稳定性。本综述全面介绍了 LDNs 在生物活性陶瓷中的发展和应用。还详细总结和讨论了 LDNs/陶瓷复合材料的新制备方法、增强机制以及 LDNs 的体外和体内性能。