Miyata Noboru, Fuke Ken-ichi, Chen Qi, Kawashita Masakazu, Kokubo Tadashi, Nakamura Takashi
Department of Material Chemistry, Graduate School of Engineering, Kyoto University, Japan.
Biomaterials. 2002 Jul;23(14):3033-40. doi: 10.1016/s0142-9612(02)00065-0.
Transparent monolithics of triethoxysilane end-capped poly(tetramethylene oxide) (Si-PTMO)-modified CaO-SiO2 hybrids were successfully synthesized by hydrolysis and polycondensation of Si-PTMO, tetraethoxysilane (TEOS) and calcium nitrate. As for the samples with varying (Ca(NO3)2)/(TEOS) molar ratios under constant ratio of (Si-PTMO)/(TEOS) of 2/3 in weight. the apatite-forming ability in a simulated body fluid (SBF) which is indicative of bioactivity. remarkably increased with increasing CaO content, although the tensile strength and Young's modulus decreased. The hybrid with (Ca(NO3)2)/(TEOS) = 0.15 in mol formed an apatite on its surface within only 1 day. For this series of samples, the strain at failure which is a measure of capability for deformation of material, was found to be about 30% and almost independent of CaO content. As for the samples with varying (Si-PTMO)/(TEOS) weight ratios under constant ratio of (Ca(NO3)2)/(TEOS) of 0.15 in mol, the strain at failure increased with increasing Si-PTMO content, but the apatite-forming ability, tensile strength and Young's modulus decreased. Thus, the synthesis of the hybrids exhibiting both high apatite-forming ability and high extensibility can be achieved by selecting suitable CaO and Si-PTMO contents. These new kind of hybrid materials may be useful as bioactive bone-repairing materials.
通过三乙氧基硅烷封端的聚四亚甲基醚(Si-PTMO)、四乙氧基硅烷(TEOS)和硝酸钙的水解和缩聚反应,成功合成了透明的整体式Si-PTMO改性CaO-SiO₂杂化材料。对于在(Si-PTMO)/(TEOS)重量比为2/3恒定的情况下具有不同(Ca(NO₃)₂)/(TEOS)摩尔比的样品,模拟体液(SBF)中的磷灰石形成能力(这是生物活性的指标)随着CaO含量的增加而显著提高,尽管拉伸强度和杨氏模量有所下降。(Ca(NO₃)₂)/(TEOS)= 0.15摩尔的杂化材料在仅1天内就在其表面形成了磷灰石。对于这一系列样品,作为材料变形能力度量的断裂应变约为30%,且几乎与CaO含量无关。对于在(Ca(NO₃)₂)/(TEOS)摩尔比为0.15恒定的情况下具有不同(Si-PTMO)/(TEOS)重量比的样品,断裂应变随着Si-PTMO含量的增加而增加,但磷灰石形成能力、拉伸强度和杨氏模量下降。因此,通过选择合适的CaO和Si-PTMO含量,可以实现兼具高磷灰石形成能力和高延伸性的杂化材料的合成。这些新型杂化材料可能作为生物活性骨修复材料有用。