骨科应用中聚合物基复合材料中弥散陶瓷纳米颗粒的力学性能

Mechanical properties of dispersed ceramic nanoparticles in polymer composites for orthopedic applications.

机构信息

Division of Engineering, Brown University, Providence, RI, USA.

出版信息

Int J Nanomedicine. 2010 Apr 15;5:299-313. doi: 10.2147/ijn.s9882.

Abstract

Ceramic/polymer composites have been considered as third-generation orthopedic biomaterials due to their ability to closely match properties (such as surface, chemistry, biological, and mechanical) of natural bone. It has already been shown that the addition of nanophase compared with conventional (or micron-scale) ceramics to polymers enhances bone cell functions. However, in order to fully take advantage of the promising nanometer size effects that nanoceramics can provide when added to polymers, it is critical to uniformly disperse them in a polymer matrix. This is critical since ceramic nanoparticles inherently have a strong tendency to form larger agglomerates in a polymer matrix which may compromise their properties. Therefore, in this study, model ceramic nanoparticles, specifically titania and hydroxyapatite (HA), were dispersed in a model polymer (PLGA, poly-lactic-co-glycolic acid) using high-power ultrasonic energy. The mechanical properties of the resulting PLGA composites with well-dispersed ceramic (either titania or HA) nanoparticles were investigated and compared with composites with agglomerated ceramic nanoparticles. Results demonstrated that well-dispersed ceramic nanoparticles (titania or HA) in PLGA improved mechanical properties compared with agglomerated ceramic nanoparticles even though the weight percentage of the ceramics was the same. Specifically, well-dispersed nanoceramics in PLGA enhanced the tensile modulus, tensile strength at yield, ultimate tensile strength, and compressive modulus compared with the more agglomerated nanoceramics in PLGA. In summary, supplemented by previous studies that demonstrated greater osteoblast (bone-forming cell) functions on well-dispersed nanophase ceramics in polymers, the present study demonstrated that the combination of PLGA with well-dispersed nanoceramics enhanced mechanical properties necessary for load-bearing orthopedic/dental applications.

摘要

陶瓷/聚合物复合材料因其能够紧密匹配天然骨的特性(如表面、化学、生物和机械特性)而被认为是第三代骨科生物材料。已经表明,与传统(或微米级)陶瓷相比,将纳米相添加到聚合物中可以增强骨细胞的功能。然而,为了充分利用纳米陶瓷添加到聚合物中时可以提供的有前途的纳米尺寸效应,将它们均匀地分散在聚合物基质中是至关重要的。这一点至关重要,因为陶瓷纳米颗粒本身具有在聚合物基质中形成更大团聚体的强烈趋势,这可能会损害它们的性能。因此,在这项研究中,使用高功率超声能量将模型陶瓷纳米颗粒(特别是二氧化钛和羟基磷灰石 (HA))分散在模型聚合物(PLGA,聚乳酸-共-羟基乙酸)中。研究了具有良好分散陶瓷(二氧化钛或 HA)纳米颗粒的 PLGA 复合材料的力学性能,并与具有团聚陶瓷纳米颗粒的复合材料进行了比较。结果表明,与具有团聚陶瓷纳米颗粒的复合材料相比,具有良好分散陶瓷纳米颗粒(二氧化钛或 HA)的 PLGA 复合材料的力学性能得到了改善,尽管陶瓷的重量百分比相同。具体来说,与 PLGA 中更团聚的纳米陶瓷相比,PLGA 中良好分散的纳米陶瓷增强了拉伸模量、屈服时的拉伸强度、极限拉伸强度和压缩模量。总之,结合先前的研究表明,在聚合物中具有良好分散的纳米相陶瓷具有更高的成骨细胞(骨形成细胞)功能,本研究表明,PLGA 与良好分散的纳米陶瓷的结合增强了承载骨科/牙科应用所需的机械性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/699f/2865024/f376bab5dda3/ijn-5-299f1.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索