伽马辐照法制备的含 SiO2-Ag 纳米粒子的聚丙烯基纳米复合材料的理化和抗菌特性

E. Fathy, Sobhy S. Abdel-Fatah, M. Bekhit
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摘要

本文评估了在聚丙烯(PP)热塑性基体中加入银涂层二氧化硅(SiO2-Ag)纳米粒子作为活性纳米填料时的物理化学和抗菌性能。纳米二氧化硅(SiO2)颗粒是用硅酸钠沉淀法制备的。然后,利用伽马射线辐射技术合成了银涂层二氧化硅(SiO2-Ag)纳米粒子。X 射线衍射(XRD)、红外光谱分析(FTIR)和透射电子显微镜(TEM)分析明确了 SiO2-Ag 纳米粒子的形成。SiO2-Ag 纳米粒子的平均粒径为 70 纳米。在熔融混合过程中,SiO2-Ag 纳米粒子与 PP 热塑性纳米复合材料的比例分别为 1.0、2.0 和 3.0。为了研究电离辐射对制备的 PP/SiO2-Ag 纳米复合材料的影响,对样品进行了 20 kGy 的伽马辐照。利用傅立叶变换红外光谱(FTIR)、X射线衍射(XRD)、机械分析、热重分析(TGA)和扫描电子显微镜(SEM)来表征聚丙烯负载二氧化硅-银纳米粒子后的物理化学变化。结果发现,PP/1.0 phr SiO2-Ag 纳米复合材料的物理化学特性优于其他两种成分。辐照试样的拉伸强度(TS)和弹性模量(EM)优于未辐照试样,而在断裂伸长率(E%)方面,反向效应占主导地位。原生 PP 的最高温度从 335°C 上升到 PP/1.0 phr SiO2-Ag 纳米复合材料的 370°C。由此可见,所制备的 PP/SiO2-Ag 纳米复合材料具有很强的抗菌活性,是食品包装应用的理想材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Physicochemical and antimicrobial characteristics of polypropylene-based nanocomposite containing SiO2-Ag nanoparticles prepared by gamma irradiation
This article evaluates the physicochemical and antimicrobial properties when silver-coated silica (SiO2-Ag) nanoparticles as active nanofiller are incorporated into the polypropylene (PP) thermoplastic matrix. The silica (SiO2) nanoparticles were prepared by precipitation method using sodium silicate. After that, silver-coated silica (SiO2-Ag) nanoparticles were synthesized by gamma radiation technique. X-ray diffraction (XRD), Infrared spectroscopy analysis (FTIR) and Transmission electron microscopy (TEM) analysis clarified the formation of SiO2-Ag nanoparticles. SiO2-Ag nanoparticles has a particle size with an average of 70 nm. The melt mixing procedure operated to fabricate PP thermoplastic nanocomposites with various ratios of 1.0, 2.0, and 3.0 part per hundred resin (phr) of the SiO2-Ag nanoparticles. To examine the effect of ionizing radiation on the prepared PP/SiO2-Ag nanocomposites, the samples were exposed to 20 kGy of gamma-irradiation. FTIR, XRD, mechanical analysis, thermogravimetric analysis (TGA), and scanning electron microscope (SEM) were utilized to characterize the physico-chemical alterations of the PP when loaded with SiO2-Ag nanoparticles. It is found that PP/1.0 phr SiO2-Ag nanocomposite revealed superior physico-chemical characteristics than the other two components. The irradiated specimens revealed superior tensile strength (TS) and elastic modulus (EM) over unirradiated ones, whereas inverse effects were predominant in case elongation at break (E%). Tmax of the native PP increased from 335°C to nearly 370°C of PP/1.0 phr SiO2-Ag nanocomposite. It is established that the fabricated PP/SiO2-Ag nanocomposites exhibited potent antimicrobial activity and can be a good candidate for food packaging applications.
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