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首页> 外文期刊>Journal of Hazardous Materials >Facile synthesis of smartaminosilane modified- SnO_2/porous silica nanocomposite for high efficiency removal of lead ions and bacterial inactivation
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Facile synthesis of smartaminosilane modified- SnO_2/porous silica nanocomposite for high efficiency removal of lead ions and bacterial inactivation

机译:灵巧地合成灵巧氨基硅烷改性的SnO_2 /多孔二氧化硅纳米复合材料,可高效去除铅离子和细菌灭活

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摘要

The aim of the present study is to synthesize a new and proficient nanoadsorbent for rapid removal of heavy metals and disinfection of microorganisms. The proposed nanoadsorbent was fabricated using SnO2 nano particles as the core, coated with mesoporous silica and further modified with 3-Aminopropyl viethoxysilane to render SnO2/PSi/NH2 nanocomposite. The nanocomposite was characterized using Fourier Transform Infrared (FTIR), X-Ray diffraction (XRD), Scanning Electron Microscopy (SEM) and Nitrogen adsorption-desorption analysis. The potential of the resultant SnO2/PSi/NH2 nanocomposite for the convenient removal of Lead ions in a batch systems was investigated as a function of solution pH, contact time, adsorbent dosage, temperature and metal ion concentration. The adsorption behavior was in good agreement with Sips and Langmuir isotherm models. The maximum adsorption capacity of SnO2/PSi/NH2 was 653.62 mg g(-1). Furthermore, the desorption experiments demonstrated that the proposed nanocomposite could be used frequently for at least three consecutive cycles with minor losses in adsorption performance. The bacterial inactivation ability of SnO2/PSi/NH2 toward E-Coli and S. aureus bacteria was also evaluated using disk diffusion and linear cultivation tests, according to which the SnO2/PSi/NH2 nanocomposite possessed exceptional disinfection ability toward both bacteria, specifically S. aureus.
机译:本研究的目的是合成一种新型,精通的纳米吸附剂,用于快速去除重金属和消毒微生物。所提出的纳米吸附剂是使用SnO2纳米颗粒作为核芯,涂覆中孔二氧化硅并进一步用3-氨丙基乙氧基硅烷进行改性而制成SnO2 / PSi / NH2纳米复合材料。使用傅立叶变换红外(FTIR),X射线衍射(XRD),扫描电子显微镜(SEM)和氮吸附-脱附分析对纳米复合材料进行表征。研究了所得SnO2 / PSi / NH2纳米复合材料在分批系统中方便去除铅离子的潜力,其与溶液pH,接触时间,吸附剂用量,温度和金属离子浓度的关系。吸附行为与Sips和Langmuir等温线模型吻合良好。 SnO2 / PSi / NH2的最大吸附容量为653.62 mg g(-1)。此外,解吸实验表明,所提出的纳米复合材料可以至少连续三个周期频繁使用,而吸附性能损失很小。还使用圆盘扩散和线性培养试验评估了SnO2 / PSi / NH2对E-Coli和金黄色葡萄球菌的细菌灭活能力,据此,SnO2 / PSi / NH2纳米复合材料对两种细菌(特别是S)具有出色的消毒能力。金黄色

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