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首页> 外文期刊>Journal of materials science >Dynamics of silver nanoparticle release from wound dressings revealed via in situ nanoscale imaging
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Dynamics of silver nanoparticle release from wound dressings revealed via in situ nanoscale imaging

机译:通过原位纳米级成像揭示了伤口敷料中银纳米颗粒的释放动力学

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摘要

The use of silver nanoparticles (AgNPs) in textiles for enhanced anti-microbial properties has led to concern about their release and impact on both human and environmental health. Here a novel method for in situ visualization of AgNP release from silver-impregnated wound dressings is introduced. By combining an environmental scanning electron microscope, a gaseous analytical detector and a peltier cooling stage, this technique provides near-instantaneous nanoscale characterization of interactions between individual water droplets and AgNPs. We show that dressings with different silver application methods have very distinct AgNP release dynamics. Specifically, water condensation on dressings with AgNP deposited directly on the fiber surface resulted in substantial and rapid AgNP release. By comparison, AgNP release from wound dressing with nanoparticles grown, not deposited, from the fiber surface was either much slower or negligible. Our methodology complements standard bulk techniques for studying of silver release from fabrics by providing dynamic nanoscale information about mechanisms governing AgNP release from individual fibers. Thus coupling these nano and macro-scale methods can provide insight into how the wound dressing fabrication could be engineered to optimize AgNP release for different applications.
机译:在纺织品中使用银纳米颗粒(AgNPs)增强抗菌性能已引起人们对其释放以及对人类和环境健康的影响的关注。在这里介绍了一种新方法,用于原位观察银浸渍伤口敷料中的AgNP释放。通过结合使用环境扫描电子显微镜,气体分析检测器和珀尔帖冷却台,该技术提供了各个水滴与AgNP之间相互作用的近乎瞬时的纳米级表征。我们表明,使用不同的银施用方法的敷料具有非常不同的AgNP释放动力学。具体而言,AgNP直接沉积在纤维表面上的敷料上的水冷凝导致大量且快速的AgNP释放。相比之下,从纳米纤维表面生长而不沉积的纳米颗粒从伤口敷料中释放出的AgNP要么慢得多,要么可以忽略不计。我们的方法通过提供有关控制单个纤维中AgNP释放机理的动态纳米级信息,对研究织物中银释放的标准批量技术进行了补充。因此,将这些纳米和宏观方法结合起来可以提供洞见,如何设计伤口敷料以优化针对不同应用的AgNP释放。

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  • 来源
    《Journal of materials science 》 |2014年第11期| 2481-2489| 共9页
  • 作者单位

    Nanomaterials Research Group, Materials Measurement Science Division, Material Measurement Laboratory, National Institute of Standards and Technology, 100 Bureau Drive, Gaithersburg, MD 20899, USA;

    School for Engineering of Matter, Transport and Energy,Arizona State University, Tempe, AZ 85287, USA;

    Surface and Trace Chemical Analysis Group, Materials Measurement Science Division, Material Measurement Laboratory, National Institute of Standards and Technology,100 Bureau Drive, Gaithersburg, MD 20899, USA;

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