Nayak Chinmayee, Kushram Priya, Zaidi Mohd Ali Abbas, Singh Indrajeet, Sen Jonaki, Balani Kantesh
Department of Materials Science and Engineering, Indian Institute of Technology-Kanpur, Kanpur, 208016, India; Department of Mechanical and Materials Engineering, University of Turku, Turku, 20500, Finland.
Department of Materials Science and Engineering, Indian Institute of Technology-Kanpur, Kanpur, 208016, India; W. M. Keck Biomedical Materials Research Laboratory, School of Mechanical and Materials Engineering, Washington State University, Pullman, WA, 99164, USA.
J Mech Behav Biomed Mater. 2023 Apr;140:105694. doi: 10.1016/j.jmbbm.2023.105694. Epub 2023 Jan 26.
The mechanical properties, such as hardness and elastic modulus, of ultra-high molecular weight polyethylene (UHMWPE) composites for acetabular cup liner are improved by adding hydroxyapatite (HAp) and carbon nanotubes (CNT). However, the weak adhesion of HAp (H) and CNT (C) with UHMWPE (U) limits the enhancement of mechanical properties. Thus, the surface of these reinforcements is silane-treated to improve the adhesion with polymer via Si-O and C=O bonds, as evidenced from spectroscopy techniques. An increased dispersion and interfacial adhesion of functionalized HAp (fH) and CNT (fC) with the polymer matrix is confirmed by nearly two-fold increased reinforcement fraction (R: 0.55) of U-10 wt% fHAp-2 wt.% fCNT (U10fH2fC) in comparison to U-10 wt% HAp-2 wt.% CNT (U10H2C). Additionally, Voronoi Tessellation (VT) on SEM micrographs of U10H2C and U10fH2fC revealed the dispersion of functionalized CNTs in U10fH2fC with a center-to-center distance of 0.076 μm, which is 74% higher for unfunctionalized CNT in U10H2C. The multilength scale strengthening of the UHMWPE matrix is confirmed from atomic level modification via functionalization of fillers which effectively adhered to the polymer chain on a micro-scale level. A uniform distribution of CNTs rendered increased crystallinity (+28%) of U10fH2fC, which in turn resulted in significant improvement in bulk mechanical properties (18%, 49%, and 12% increased hardness (148.1 MPa), elastic modulus (3.51 GPa) and tensile elastic modulus (219.8 MPa), respectively) in comparison to that of U10H2C. Functionalized-HAp/CNT reinforced UHMWPE composites maintained its cytocompatibility in the MTT test and fluorescence microscopy, affirming their potential employment as acetabular cup liners for hip joint arthroplasty.
通过添加羟基磷灰石(HAp)和碳纳米管(CNT),髋臼杯衬里用超高分子量聚乙烯(UHMWPE)复合材料的机械性能(如硬度和弹性模量)得到了改善。然而,HAp(H)和CNT(C)与UHMWPE(U)之间较弱的附着力限制了机械性能的提高。因此,对这些增强材料的表面进行硅烷处理,以通过Si-O键和C=O键改善与聚合物的附着力,光谱技术证明了这一点。与U-10 wt% HAp-2 wt.% CNT(U10H2C)相比,U-10 wt% 功能化HAp(fH)-2 wt.% 功能化CNT(fC)(U10fH2fC)的增强分数(R:0.55)增加了近两倍,这证实了功能化HAp(fH)和CNT(fC)与聚合物基体的分散性和界面附着力增加。此外,对U10H2C和U10fH2fC的扫描电子显微镜图像进行Voronoi镶嵌(VT)分析,结果显示功能化CNT在U10fH2fC中的分散情况,其中心距为0.076μm,这比U10H2C中未功能化CNT的中心距高74%。通过对填料进行功能化处理,在原子水平上对UHMWPE基体进行改性,从而在微观尺度上有效地与聚合物链结合,证实了UHMWPE基体的多尺度强化作用。CNT的均匀分布使U10fH2fC的结晶度提高了28%,这反过来又使其整体机械性能得到显著改善(硬度(148.1MPa)、弹性模量(3.51GPa)和拉伸弹性模量(219.8MPa)分别提高了18%、49%和12%),与U10H2C相比。功能化-HAp/CNT增强的UHMWPE复合材料在MTT试验和荧光显微镜检查中保持了其细胞相容性,证实了它们作为髋关节置换髋臼杯衬里的潜在用途。