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Fabrication nanomechanical characterization and cytocompatibility of gold-reinforced chitosan bio-nanocomposites

机译:金增强壳聚糖生物纳米复合材料的制备纳米力学表征和细胞相容性

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摘要

Chitosan, a naturally derived polymer represents one of the most technologically important classes of active materials with applications in a variety of industrial and biomedical fields. Gold nanoparticles (~32 nm) were synthesized via a citrate reduction method from chloroauric acid and incorporated in Chitosan matrix. Bio-nanocomposite films with varying concentrations of gold nanoparticles were prepared through solution casting process. Uniform distribution of gold nanoparticles was achieved throughout the chitosan matrix and was confirmed with SEM. Synthesis outcomes and prepared nanocomposites were characterized using SEM, TEM, EDX, SAED, UV–vis, XRD, DLS, and Zeta potential for their physical, morphological and structural properties. Nanoscale properties of materials under the influence of temperature were characterized through nanoindentation techniques. From quasi-static nanoindentation, it was observed that hardness and reduced modulus of the nanocomposites were increased significantly in direct proportion to the gold nanoparticle concentration. Gold nanoparticle concentration also showed positive impact on storagemodulus and thermal stability of the material. The obtained films were confirmed to be biocompatible by their ability to support growth of human cells in vitro. In summary, the results show enhanced mechanical properties with increasing gold nanoparticle concentration, and provide better understanding of the structure–property relationships of such biocompatiblematerials for potential biomedical applications.
机译:壳聚糖是一种天然衍生的聚合物,代表了最先进的活性材料类别之一,已在各种工业和生物医学领域中得到应用。通过柠檬酸盐还原法从氯金酸合成金纳米颗粒(〜32 nm),并掺入壳聚糖基质中。通过溶液流延工艺制备了具有不同浓度的金纳米颗粒的生物纳米复合膜。金纳米颗粒均匀分布在整个壳聚糖基质中,并用SEM确认。使用SEM,TEM,EDX,SAED,UV-vis,XRD,DLS和Zeta电位对合成结果和制备的纳米复合材料进行了物理,形态和结构表征。通过纳米压痕技术表征了材料在温度影响下的纳米性能。从准静态纳米压痕,观察到纳米复合材料的硬度和降低的模量与金纳米颗粒浓度成正比而显着增加。金纳米颗粒的浓度也显示出对材料的储能模量和热稳定性的积极影响。通过其在体外支持人细胞生长的能力,证实了所获得的膜是生物相容的。总之,结果表明,随着金纳米颗粒浓度的增加,机械性能增强,并为潜在的生物医学应用提供了对此类生物相容性材料的结构-性质关系的更好理解。

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