首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Mechanical and biodegradable properties of porous titanium filled with poly-L-lactic acid by modified in situ polymerization technique.
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Mechanical and biodegradable properties of porous titanium filled with poly-L-lactic acid by modified in situ polymerization technique.

机译:改性原位聚合技术填充聚-L-乳酸的多孔钛的力学和生物降解性能。

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Porous titanium (pTi) can possess a low Young's modulus equal to that of human bone, depending on its porosity. However, the mechanical strength of pTi deteriorates greatly with increasing porosity. On the other hand, certain medical polymers exhibit biofunctionalities, which are not possessed intrinsically by metallic materials. Therefore, a biodegradable medical polymer, poly-L-lactic acid (PLLA), was used to fill in the pTi pores using a modified in-situ polymerization technique. The mechanical and biodegradable properties of pTi filled with PLLA (pTi/PLLA) as fabricated by this technique and the effects of the PLLA filling were evaluated in this study. The pTi pores are almost completely filled with PLLA by the developed process (i.e., technique). The tensile strength and tensile Young's modulus of pTi barely changes with the PLLA filling. However, the PLLA filling improves the compressive 0.2% proof stress of pTi having any porosity and increases the compressive Young's modulus of pTi having relatively high porosity. This difference between the tensile and compressive properties of pTi/PLLA is considered to be caused by the differing resistances of PLLA in the pores to tensile and compressive deformations. The PLLA filled into the pTi pores degrades during immersion in Hanks' solution at 310 K. The weight loss due to PLLA degradation increases with increasing immersion time. However, the rate of weight loss of pTi/PLLA during immersion decreases with increasing immersion time. Hydroxyapatite formation is observed on the surface of pTi/PLLA after immersion for >/=8 weeks. The decrease in the weight-loss rate may be caused by weight gain due to hydroxyapatite formation and/or the decrease in contact area with Hanks' solution caused by its formation on the surface of pTi/PLLA.
机译:多孔钛(pTi)的孔隙率低,其杨氏模量可以与人的骨骼相等。但是,随着孔隙率的增加,pTi的机械强度大大降低。另一方面,某些医用聚合物具有生物功能,而金属材料本身并不具备这些功能。因此,采用改进的原位聚合技术,使用可生物降解的医用聚合物聚L-乳酸(PLLA)填充pTi孔。在这项研究中评估了用这种技术制造的填充有PLLA的pTi(pTi / PLLA)的机械和生物降解性能,以及PLLA填充的效果。通过开发的方法(即技术),pTi孔几乎完全被PLLA填充。 pTi的拉伸强度和拉伸杨氏模量几乎不会随PLLA填充而变化。然而,PLLA填充改善了具有任何孔隙度的pTi的0.2%弹性极限压缩应力,并且增加了具有相对高孔隙度的pTi的压缩杨氏模量。 pTi / PLLA的拉伸和压缩特性之间的这种差异被认为是由孔隙中PLLA对拉伸和压缩变形的不同抵抗力引起的。在310 K下的Hanks溶液中浸渍时,填充到pTi孔中的PLLA降解。由于PLLA降解而引起的重量损失随浸渍时间的增加而增加。但是,浸入过程中pTi / PLLA的重量损失率随浸入时间的增加而降低。浸入> / = 8周后,在pTi / PLLA的表面观察到羟基磷灰石的形成。失重率的降低可能是由于羟基磷灰石形成引起的重量增加和/或由于其在pTi / PLLA表面上形成而引起的与汉克斯溶液的接触面积减小。

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