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首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Creep, recovery, and stress relaxation behavior of nanostructured bioactive calcium phosphate glass-POSS/polymer composites for bone implants studied under simulated physiological conditions
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Creep, recovery, and stress relaxation behavior of nanostructured bioactive calcium phosphate glass-POSS/polymer composites for bone implants studied under simulated physiological conditions

机译:纳米结构生物活性钙磷酸钙玻璃 - POSS /聚合物复合材料的蠕变,恢复和应力松弛行为在模拟生理条件下研究的骨植入物

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摘要

The creep and recovery and the stress relaxation behaviors of poly(butylene adipate-co-terephthalate) (PBAT) and polyhydroxyalkanoates (PHA) binary blends incorporating 30 wt % of a mixture of trisilanolisobutyl polyhedral oligomeric silsesquioxanes (POSS) and calcium phosphate glass (CaP-g) were investigated under simulated physiological and human body temperature conditions. The synergistic effect of PHA and CaP-g/POSS filler remarkably improved the creep behavior of the PBAT matrix and decreased its residual strain, consequently enhancing its elastic recovery. A considerable increase of the relaxation modulus of the hybrid materials was also observed upon incorporation of PHA and CaP-g/POSS. The relaxation modulus of the neat PBAT sample increased from similar to 60 MPa to similar to 1600 MPa after addition of 30 wt % CaP-g/POSS and 70 wt % PHA. However, after exposure of the composites to the simulated human body conditions for 14 days, a drop of dynamic mechanical properties of the studied material systems was observed along with formation of a desirable calcium phosphate phase on the material surface. The long-term (i.e., up to 7 x 10(5) s) viscoelastic behavior of the studied materials was successfully predicted using the time-temperature superposition principle and the obtained creep strain and the relaxation modulus master curves were satisfactorily fitted to the Findley power law equation and the generalized Maxwell model, respectively. This study demonstrates a facile method for tailoring CaP-g/POSS bioactive glasses composition for bone-like apatite formation on biopolymer surfaces. (c) 2019 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 107B: 2419-2432, 2019.
机译:聚(丁烯己二酸丁二醇酯)(PBAT)和聚羟基链烷酸盐(PHA)二元共混物的蠕变和回收和应力松弛行为掺入30wt%的三硅醇异丁基多面寡烷烃(POSS)和磷酸钙玻璃(帽)在模拟生理体温条件下进行了研究。 PHA和CAP-G / POSS填充剂的协同作用显着提高了PBAT基质的蠕变行为并降低了其残余菌株,从而提高其弹性回收。在掺入PHA和CAP-G / POSS时,还观察到杂种材料的放松模量的相当大增加。在加入30wt%CAP-G / POST和70wt%PHA后,整齐PBAT样品的弛豫模量增加到60MPa至类似于1600MPa。然而,在将复合材料暴露于模拟的人体状态后14天后,观察到研究材料系统的动态力学性质以及在材料表面上形成了所需的磷酸钙相。使用时间温度叠加原理成功预测了研究材料的长期(即,高达7×10(5)秒的粘弹性行为,并将获得的蠕变菌株和弛豫模量主曲线令人满意地安装在Findley上权力法方程和广义麦克斯韦模型。该研究表明,用于剪裁帽-G / POSS生物活性玻璃组合物的体状磷灰石形成在生物聚合物表面上的容纳方法。 (c)2019 Wiley期刊,Inc。J生物保解件B:Appl Biomater 107B:2019-2432,2019。

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