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A robust super-paramagnetic TiO2:Fe3O4:Ag nanocomposite with enhanced photo and bio activities on polyester fabric via one step sonosynthesis

机译:强大的超顺磁性TiO2:Fe3O4:Ag纳米复合材料,通过一步超声合成,在聚酯织物上具有增强的光和生物活性

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摘要

High intensity ultrasound was used for the synthesis and simultaneous deposition of TiO2:Fe3O4:Ag nanocomposites on polyester surface providing a feasible route for imparting magnetic and enhanced antibacterial and self-cleaning activities with controllable hydrophilicity/hydrophobicity at low temperature. Synergistic impact of sonochemistry and physical effects of ultrasound originating from implosive collapse of bubbles were responsible for the formation and adsorption of nanomaterials on the fabric surface during ultrasound irradiation. The increase in photocatalytic activity of TiO2 was obtained attributing to the co-operation of iron oxide and silver nanoparticles nucleated on TiO2 surface boosting the electron-hole pair separation and prolonging their recombination rate. The process was further optimized in terms of reagents concentrations including Fe2+/TiO2 and Ag/TiO2 molar ratios using central composite design in order to achieve the best self-cleaning property of the treated fabric. The magnetic measurements indicated the super-paramagnetic behavior of the treated fabric with saturation magnetization of 4.5 (emu/g). Findings suggest the potential of the proposed facial method in producing an intelligent fabric with durable multi-functional activities that can be suitable for various applications including medical, military, bio-separation, bid-sensors, magneto graphic printing, magnetic screens and magnetic filters. (C) 2015 Elsevier B.V. All rights reserved.
机译:高强度超声用于在聚酯表面上合成和同时沉积TiO2:Fe3O4:Ag纳米复合材料,为在低温下以可控的亲水性/疏水性赋予磁性,增强的抗菌和自洁活性提供了可行的途径。超声的声化学协同作用和超声的物理效应起因于内爆性气泡的破裂,这是纳米材料在超声辐射过程中在织物表面形成和吸附的原因。 TiO 2的光催化活性的增加归因于氧化铁和在TiO 2表面成核的银纳米颗粒的协同作用,促进了电子-空穴对的分离并延长了它们的复合速率。使用中央复合设计进一步优化了包括Fe2 + / TiO2和Ag / TiO2摩尔比在内的试剂浓度,以实现处理后织物的最佳自清洁性能。磁性测量表明处理过的织物的饱和磁化强度为4.5(emu / g)的超顺磁性。研究结果表明,所提出的面部方法在生产具有耐用多功能功能的智能织物方面具有潜力,该织物可适用于各种应用,包括医疗,军事,生物分离,投标传感器,磁图形印刷,磁性屏幕和磁性过滤器。 (C)2015 Elsevier B.V.保留所有权利。

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