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Nanocomposites containing polyvinyl alcohol and reinforced carbon-based nanofiller: A super effective biologically active material

机译:包含聚乙烯醇和增强型碳基纳米填料的纳米复合材料:一种超级有效的生物活性材料

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A new class of biologically active polymer nanocomposites based on polyvinyl alcohol and reinforced mixed graphene/carbon nanotube as carbon-based nanofillers with a general abbreviation (polyvinyl alcohol/mixed graphene–carbon nanotubes) has been successfully synthesized by an efficient solution mixing method with the help of ultrasonic radiation. Mixed graphene and carbon nanotubes ratio has been prepared (50%:50%) wt by wt. Different loading of mixed graphene–carbon nanotubes (2, 5, 10, 15, and 20 wt%) were added to the host polyvinyl alcohol polymer. In this study, polyvinyl alcohol/mixed graphene–carbon nanotubesa–e nanocomposites were characterized and analyzed by X-ray diffraction, Fourier transform infrared, scanning electron microscopy, transmission electron microscopy, and the thermal stability was measured by thermogravimetric analysis and derivative thermal gravimetric. Fourier transform infrared and X-ray diffraction spectra proved the addition of mixed graphene–carbon nanotubes into polyvinyl alcohol matrix. X-ray diffraction patterns for these nanocomposites showed 2θ = 19.35° and 40° due to the crystal nature of polyvinyl alcohol in addition to 2θ = 26.5° which attributed to the graphite plane of carbon-based nanofillers. Thermal stability of polyvinyl alcohol/mixed graphene–carbon nanotubes nanocomposites was enhanced comparing with pure polyvinyl alcohol. The main degradation step ranged between 360° and 450°C. Moreover, maximum composite degradation temperature has appeared at range from 285°C to 267°C and final composite degradation temperature (FCDT) displayed at a temperature range of 469–491°C. Antibacterial property of polyvinyl alcohol/mixed graphene–carbon nanotubesa–e nanocomposites were tested against Escherichia coli bacteria using the colony forming units technique. Results showed an improvement of antibacterial property. The rate percentages of polyvinyl alcohol/mixed graphene–carbon nanotubesb, polyvinyl alcohol/mixed graphene–carbon nanotubesc, and polyvinyl alcohol/mixed graphene–carbon nanotubesd nanocomposites after 24 h are 6%, 5%, and 7% respectively. However, polyvinyl alcohol/mixed graphene–carbon nanotubese nanocomposite showed hyperactivity, where its reduction percentage remarkably raised up to 100% which is the highest inhibition rate percentage. In addition, polyvinyl alcohol and polyvinyl alcohol/graphene–carbon nanotubesa–d showed colony forming units values/ml 70 × 106 and 65 ± 2 × 106 after 12 h. After 24 h, the colony forming units values/ml were in the range of 86 × 106–95 × 106.
机译:一种有效的溶液混合方法已经成功地合成了一种新型的具有生物活性的聚合物纳米复合材料,该复合材料以聚乙烯醇和增强的混合石墨烯/碳纳米管为基本缩写的碳基纳米填料(聚乙烯醇/混合石墨烯-碳纳米管)为基础。超声波辐射的帮助。已经按重量计制备了混合的石墨烯和碳纳米管比例(50%∶50%)。将不同含量的混合石墨烯-碳纳米管(2、5、10、15和20 wt%)添加到主体聚乙烯醇聚合物中。在这项研究中,通过X射线衍射,傅立叶变换红外光谱,扫描电子显微镜,透射电子显微镜对聚乙烯醇/石墨烯-碳纳米管-e混合纳米复合材料进行表征和分析,并通过热重分析和导数热重分析法测定其热稳定性。 。傅立叶变换红外和X射线衍射光谱证明,将混合的石墨烯-碳纳米管添加到聚乙烯醇基体中。由于归因于碳基纳米填料的石墨面的2θ= 26.5°,聚乙烯醇的晶体性质使这些纳米复合物的X射线衍射图显示出2θ= 19.35°和40°。与纯聚乙烯醇相比,聚乙烯醇/石墨烯-碳纳米管混合纳米复合材料的热稳定性得到增强。主要降解步骤的范围为360°至450°C。此外,最高复合材料降解温度出现在285°C至267°C的范围内,最终复合材料降解温度(FCDT)显示在469–491°C的温度范围内。使用菌落形成单位技术,测试了聚乙烯醇/石墨烯-碳纳米管-e混合纳米复合材料对大肠杆菌的抗菌性能。结果显示抗菌性能得到改善。 24小时后聚乙烯醇/混合石墨烯-碳纳米管b,聚乙烯醇/混合石墨烯-碳纳米管sc和聚乙烯醇/石墨烯-碳纳米管d纳米复合物的比率分别为6%,5%和7%。但是,聚乙烯醇/石墨烯-碳纳米管混合纳米复合材料表现出高活性,其还原率显着提高到100%,这是最高的抑制率百分比。此外,聚乙烯醇和聚乙烯醇/石墨烯-碳纳米管-s在12 h后显示菌落形成单位值/ ml 70×106和65±2×106。 24小时后,菌落形成单位值/ ml在86×106–95×106的范围内。

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