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首页> 外文期刊>Journal of materials science >Zn~(2+) release behavior and surface characteristics of Zn/LDPE nanocomposites and ZnO/LDPE nanocomposites in simulated uterine solution
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Zn~(2+) release behavior and surface characteristics of Zn/LDPE nanocomposites and ZnO/LDPE nanocomposites in simulated uterine solution

机译:Zn / LDPE纳米复合材料和ZnO / LDPE纳米复合材料在模拟子宫溶液中的Zn〜(2+)释放行为和表面特性

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摘要

To decrease the side effects of the existing copper-bearing intrauterine devices, the zinc/low-density polyethylene (Zn/LDPE) nanocomposite and zinc-oxide/ low-density polyethylene (ZnO/LDPE) nanocomposite have been developed in our research for intrauterine devices (IUDs). In this study, the influences of preparation methods of nanocomposites and particle sizes of zinc and zinc oxide on Zn~(2+) release from composites incubated in simulated uterine solution were investigated. All release profiles are biphasic: an initial rapid release phase is followed by a near zero-order release period. Zn~(2+) release rates of nanocomposites prepared by compressing moulding are higher than those of the nanocomposites prepared by hot-melt extrusing. Compared with Zn~(2+) release from the microcomposites, the release profiles of the nanocomposites exhibit a sharp decrease in Zn~(2+) release rate in the first 18 days, an early onset of the zero-order release period and a high release rate of Zn~(2+) at the later stage. The microstructure of the Zn/LDPE sample and the ZnO/LDPE sample after being incubated for 200 days was characterized by SEM, XRD and EDX techniques. The results show that the dissolution depth of ZnO/LDPE nanocomposite is about 60 um. Lots of pores were formed on the surface of the Zn/LDPE sample and ZnO/LDPE sample, indicating that these pores can provide channels for the dissolution of nanoparticles in the matrix. The undesirable deposits that are composed of ZnO are only detected on the surface of Zn/LDPE nanocomposite, which may increase the risk of side effects associated with IUDs. It can be expected that ZnO/LDPE nanocomposite is more suitable for IUDs than Zn/LDPE nanocomposite.
机译:为了减少现有的含铜宫内节育器的副作用,我们在宫腔内研究中开发了锌/低密度聚乙烯(Zn / LDPE)纳米复合材料和氧化锌/低密度聚乙烯(ZnO / LDPE)纳米复合材料设备(IUD)。本研究探讨了纳米复合材料的制备方法以及锌和氧化锌的粒径对模拟子宫溶液中孵育的复合物中Zn〜(2+)释放的影响。所有释放曲线都是双相的:最初的快速释放阶段之后是接近零阶的释放期。压缩成型制备的纳米复合材料的Zn〜(2+)释放速率高于热熔挤出制备的纳米复合材料。与从微复合物中释放出的Zn〜(2+)相比,纳米复合物的释放曲线在开始的18天,零级释放期的提前发作和Zn〜(2+)的释放速率上呈现出急剧的下降。后期Zn〜(2+)的释放速率较高。通过SEM,XRD和EDX技术对Zn / LDPE样品和ZnO / LDPE样品孵育200天后的微观结构进行了表征。结果表明,ZnO / LDPE纳米复合材料的溶解深度约为60 um。 Zn / LDPE样品和ZnO / LDPE样品的表面上形成了许多孔,表明这些孔可以为纳米颗粒在基质中的溶解提供通道。仅在Zn / LDPE纳米复合材料的表面上检测到由ZnO组成的不良沉积物,这可能会增加与IUD相关的副作用的风险。可以预期,ZnO / LDPE纳米复合材料比Zn / LDPE纳米复合材料更适用于IUD。

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  • 来源
    《Journal of materials science》 |2008年第11期|p.3319-3326|共8页
  • 作者单位

    Faculty of Material Science and Chemical Engineering,China University of Geosciences, Wuhan 430074,People's Republic of China,State Key Laboratory of Material Processing and Die & Mould Technology, Department of Materials Science and Engineering,Huazhong University of Science and Technology, Wuhan,Hubei 430074, People's Republic of China;

    State Key Laboratory of Material Processing and Die & Mould Technology, Department of Materials Science and Engineering,Huazhong University of Science and Technology, Wuhan,Hubei 430074, People's Republic of China;

    State Key Laboratory of Material Processing and Die & Mould Technology, Department of Materials Science and Engineering,Huazhong University of Science and Technology, Wuhan,Hubei 430074, People's Republic of China;

    State Key Laboratory of Material Processing and Die & Mould Technology, Department of Materials Science and Engineering,Huazhong University of Science and Technology, Wuhan,Hubei 430074, People's Republic of China;

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