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首页> 外文期刊>Biomaterials >Apatite coating on hydrophilic polymer-grafted poly(ethylene) films using an alternate soaking process.
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Apatite coating on hydrophilic polymer-grafted poly(ethylene) films using an alternate soaking process.

机译:使用交替浸泡工艺在亲水性聚合物接枝的聚乙烯薄膜上涂覆磷灰石涂层。

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摘要

Previously, we developed a novel alternate soaking process and clarified that bone-like apatite was formed on/in organic polymer hydrogel matrices using this process. The present study focused on the apatite coating on hydrophilic polymer grafted poly(ethylene) (PE) films with various grafting densities and commonly used hydrophilic polymers, poly(acryl amide) (PAAm) and poly(acrylic acid) (PAAc) were employed. From X-ray diffraction analysis, hydroxyapatite was coated on PAAm- or PAAc- grafted PE films. The amount of apatite coated on PAAm-grafted PE (PAAm-g-PE) films increased with an increase in the reaction cycles and the grafting density of PAAm. Similar to PAAm-g-PE, the amount of apatite coated on PAAc-grafted PE (PAAc-g-PE) films increased linearly with an increase in the grafting density of the PAAc up to around 30 microg/cm2. While, no significant increase in the apatite coating on the PAAc-g-PE films was observed even after 50 reaction cycles when the grafting densities of PAAc were over 30 microg/cm2. Apatite coating was not observed on original PE films. Scanning electron microscopic images reveal that the aggregation of apatite crystals on all PAAm-g-PE films and PAAc-g-PE films with grafting density from 10 to 30 microg/cm2. On the other hand, a dense apatite layer with some cracks was coated when the grafting density of the PAAc chains was over 30 microg/cm2. These results indicated that it was possible to coat apatite on hydrophilic polymer grafted PE films by an alternate soaking process and that the apatite crystal morphology could be controlled as a function of polymer type and density.
机译:以前,我们开发了一种新颖的交替浸泡工艺,并阐明了使用此工艺在有机聚合物水凝胶基质上/之中形成了骨状磷灰石。本研究的重点是在具有各种接枝密度的亲水性聚合物接枝的聚乙烯(PE)薄膜上的磷灰石涂层,并采用了常用的亲水性聚合物,即聚丙烯酰胺(PAAm)和聚丙烯酸(PAAc)。通过X射线衍射分析,将羟基磷灰石涂覆在PAAm或PAAc接枝的PE膜上。随着反应周期和PAAm接枝密度的增加,涂覆在PAAm接枝的PE(PAAm-g-PE)膜上的磷灰石数量增加。与PAAm-g-PE相似,涂在PAAc接枝的PE(PAAc-g-PE)膜上的磷灰石的量随着PAAc接枝密度的增加而线性增加,直至约30 microg / cm2。同时,当PAAc的接枝密度超过30 microg / cm2时,即使经过50个反应循环,也没有观察到PAAc-g-PE膜上磷灰石涂层的显着增加。在原始的PE膜上未观察到磷灰石涂层。扫描电子显微镜图像显示,在接枝密度为10至30 microg / cm2的所有PAAm-g-PE膜和PAAc-g-PE膜上,磷灰石晶体的聚集。另一方面,当PAAc链的接枝密度超过30μg/ cm 2时,涂覆有一些裂纹的致密磷灰石层。这些结果表明,可以通过交替的浸泡方法将磷灰石涂覆在亲水性聚合物接枝的PE膜上,并且可以根据聚合物类型和密度来控制磷灰石的晶体形态。

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