Synthesis and characterizations iron oxide carbon nanotubes nanocomposite by laser ablation for anti-microbial applications.

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal, genetic engineering & biotechnology Pub Date : 2021-05-18 DOI:10.1186/s43141-021-00161-y
Moatasem Al-Salih, Syakirah Samsudin, Siti Suri Arshad
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引用次数: 7

Abstract

Background: Environmental contamination by microbes is a major public health concern. A damp environment is one of the potential sources for microbe proliferation. Smart synthesis nanocatalytic coatings on surfaces, food, and material from different pathogen bacteria can inhibit using the Fe3O4/CNTs as anti-microbial growth can effectively curb this growing threat. In this present work, the anti-microbial efficacy of synthesis of a compound nanoparticle-containing iron oxide-multi-walled carbon nanotube was combined by laser ablation PLAL and explored the anti-bacterial action of colloidal solution of Fe3O4/CNTs NPs that was evaluated against bacteria which is classified as gram-negative (Escherichia coli (E. coli), Klebsiella pneumonia (K. pneumonia), and also that is identified as gram-positive (Streptococcus pyogenes (S .pyogenes) and Staphylococcus aureus (S. aureus) under visible light irradiation.

Results: Doping of a minute fraction of iron(III) salt (0.5 mol%) in a volatile solvent (ethanol) was carried out via the sol-gel technique. Fe3O4 was further calcined at various temperatures (in the range of 500-700 °C) to evaluate the thermal stability of the Fe3O4 nanoporous oxidizer nanoparticles. The physicochemical properties of the samples were characterized through X-ray diffraction (XRD), atomic force microscopy (AFM), attenuated total reflectance Fourier transform infrared spectroscopy (ATR-FTIR), and UV-Visible spectroscopy techniques. XRD results revealed that the nanoparticles framework of Fe3O4 was maintained well up to 650 °C by the Fe dopant. UV-Vis results suggested that absorption property of combination Fe3O4/CNTs nanopowder by PLAL was enhanced and the band gap is reduced into 2.0 eV.

Conclusions: Density functional theory (DFT) studies emphasize the introduction of Fe+ and Fe2+ ions by replacing other ions in the CNT lattice, therefore creating oxygen vacancies. These further promoted anti-microbial efficiency. A significantly high bacterial inactivation that indicates results was evaluated and that the mean estimations of restraint were determined from triple assessment in every appraisal at 400 ml which represent the best anti-bacterial action against gram-positive and gram-negative microbes.

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激光烧蚀制备抗微生物用氧化铁碳纳米管纳米复合材料及表征
背景:微生物造成的环境污染是一个主要的公共卫生问题。潮湿的环境是微生物繁殖的潜在来源之一。使用Fe3O4/CNTs作为抗微生物生长材料,可以有效地抑制来自不同病原菌的表面、食物和材料上的智能合成纳米催化涂层。在本研究中,采用激光烧蚀PLAL结合合成含氧化铁复合纳米颗粒-多壁碳纳米管的抑菌效果,探讨了Fe3O4/CNTs纳米管胶体溶液对革兰氏阴性(大肠埃希菌(E. coli)、肺炎克雷伯菌(K. pneumonia)、在可见光照射下也被鉴定为革兰氏阳性(化脓性链球菌)和金黄色葡萄球菌(S. aureus)。结果:通过溶胶-凝胶技术将微量铁(III)盐(0.5 mol%)掺杂到挥发性溶剂(乙醇)中。在不同温度(500-700℃)下进一步煅烧Fe3O4,以评估Fe3O4纳米多孔氧化剂纳米颗粒的热稳定性。通过x射线衍射(XRD)、原子力显微镜(AFM)、衰减全反射傅里叶变换红外光谱(ATR-FTIR)和紫外可见光谱技术对样品的理化性质进行了表征。XRD结果表明,在650℃的高温下,Fe3O4纳米颗粒的骨架仍保持良好。紫外可见光谱结果表明,PLAL增强了Fe3O4/CNTs复合纳米粉体的吸收性能,带隙减小到2.0 eV。结论:密度泛函理论(DFT)研究强调通过取代碳纳米管晶格中的其他离子引入Fe+和Fe2+离子,从而产生氧空位。这些进一步提高了抗菌效率。对结果进行了评估,结果表明细菌灭活率显著高,并且在400ml的每次评估中通过三重评估确定了抑制的平均估计,这代表了对革兰氏阳性和革兰氏阴性微生物的最佳抗菌作用。
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