Nayak Gargi Shankar, Palkowski Heinz, Carradò Adele
Institute of Metallurgy (IMET), Clausthal University of Technology, Robert-Koch-Strasse 42, 38678 Clausthal-Zellerfeld, Germany.
Department of Applied Mechanics, Saarland University, Campus A4 2, 66123 Saarbruecken, Germany.
J Funct Biomater. 2023 Aug 10;14(8):420. doi: 10.3390/jfb14080420.
Biocompatible polymers such as polymethyl methacrylate (PMMA), despite fulfilling biomedical aspects, lack the mechanical strength needed for hard-tissue implant applications. This gap can be closed by using composites with metallic reinforcements, as their adaptable mechanical properties can overcome this problem. Keeping this in mind, novel Ti-mesh-reinforced PMMA composites were developed. The influence of the orientation and volume fraction of the mesh on the mechanical properties of the composites was investigated. The composites were prepared by adding Ti meshes between PMMA layers, cured by hot-pressing above the glass transition temperature of PMMA, where the interdiffusion of PMMA through the spaces in the Ti mesh provided sufficient mechanical clamping and adhesion between the layers. The increase in the volume fraction of Ti led to a tremendous improvement in the mechanical properties of the composites. A significant anisotropic behaviour was analysed depending on the direction of the mesh. Furthermore, the shaping possibilities of these composites were investigated via four-point bending tests. High shaping possibility was found for these composites when they were shaped at elevated temperature. These promising results show the potential of these materials to be used for patient-specific implant applications.
生物相容性聚合物,如聚甲基丙烯酸甲酯(PMMA),尽管满足生物医学方面的要求,但缺乏硬组织植入应用所需的机械强度。通过使用带有金属增强材料的复合材料可以弥补这一差距,因为它们可适应的机械性能能够克服这个问题。考虑到这一点,开发了新型钛网增强PMMA复合材料。研究了网的取向和体积分数对复合材料机械性能的影响。通过在PMMA层之间添加钛网来制备复合材料,并在高于PMMA玻璃化转变温度的条件下通过热压进行固化,在此过程中PMMA通过钛网中的空隙进行相互扩散,从而在各层之间提供足够的机械夹紧力和粘合力。钛体积分数的增加导致复合材料的机械性能有了极大的改善。根据网的方向分析出了显著的各向异性行为。此外,通过四点弯曲试验研究了这些复合材料的成型可能性。当这些复合材料在高温下成型时,发现其具有很高的成型可能性。这些有前景的结果表明了这些材料用于定制患者植入物应用的潜力。