TY - JOUR
T1 - Preparation of PTMO-Modified CaO-TiO2 Hybrids via Sol-Gel Processing
T2 - Their Apatite-Forming Ability and Mechanical Properties
AU - Miyata, Noboru
AU - Fuke, Ken Ichi
AU - Chen, Qi
AU - Kawashita, Masakazu
AU - Kokubo, Tadashi
AU - Nakamura, Takashi
N1 - Copyright:
Copyright 2017 Elsevier B.V., All rights reserved.
PY - 2003/8
Y1 - 2003/8
N2 - Transparent monolithics of poly(tetramethylene oxide) (PTMO)-modified CaO-TiO2 hybrids were obtained by hydrolysis and polycondensation of triethoxysilane end-capped poly(tetramethylene oxide) (Si-PTMO), tetraisopropyltitanate (TiPT) and calcium nitrate. Under the constant ratio of (Si-PTMO) / (TiPT) = 2/3 in mass, the molar ratio of (Ca(NO3) 2) / (TiPT) was varied from 0 to 0.15. The hybrid samples were subjected to the evaluation of the apatite-forming ability in a simulated body fluid (SBF) and to the mechanical property measurements in air by three-point bending. The apatite-forming ability in SBF remarkably increased with increasing CaO content. The hybrid samples with (Ca(NO3) 2)/(TiPT) =0.10 and 0.15 in mol formed an apatite on their surfaces within only one day. Although the Young's modulus and bending strength decreased with increasing CaO content, all the values were within the range of those of human cancellous bone. The failure strains were found to be in the range of about 13 to 25%. Thus, the hybrids exhibiting both high apatite-forming ability and high capability for deformation were successfully synthesized. These hybrids may be useful as new kind of bioactive bone-repairing materials.
AB - Transparent monolithics of poly(tetramethylene oxide) (PTMO)-modified CaO-TiO2 hybrids were obtained by hydrolysis and polycondensation of triethoxysilane end-capped poly(tetramethylene oxide) (Si-PTMO), tetraisopropyltitanate (TiPT) and calcium nitrate. Under the constant ratio of (Si-PTMO) / (TiPT) = 2/3 in mass, the molar ratio of (Ca(NO3) 2) / (TiPT) was varied from 0 to 0.15. The hybrid samples were subjected to the evaluation of the apatite-forming ability in a simulated body fluid (SBF) and to the mechanical property measurements in air by three-point bending. The apatite-forming ability in SBF remarkably increased with increasing CaO content. The hybrid samples with (Ca(NO3) 2)/(TiPT) =0.10 and 0.15 in mol formed an apatite on their surfaces within only one day. Although the Young's modulus and bending strength decreased with increasing CaO content, all the values were within the range of those of human cancellous bone. The failure strains were found to be in the range of about 13 to 25%. Thus, the hybrids exhibiting both high apatite-forming ability and high capability for deformation were successfully synthesized. These hybrids may be useful as new kind of bioactive bone-repairing materials.
KW - Apatite-forming ability
KW - Bioactivity
KW - Mechanical properties
KW - Organic-inorganic hybrids
KW - PTMO-modified CaO-TiO hybrids
KW - Poly(tetramethylene oxide] (PTMO)
KW - Sol-gel process
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U2 - 10.2109/jcersj.111.555
DO - 10.2109/jcersj.111.555
M3 - Article
AN - SCOPUS:0141867649
SN - 1882-0743
VL - 111
SP - 555
EP - 559
JO - Nippon Seramikkusu Kyokai Gakujutsu Ronbunshi/Journal of the Ceramic Society of Japan
JF - Nippon Seramikkusu Kyokai Gakujutsu Ronbunshi/Journal of the Ceramic Society of Japan
IS - 1296
ER -