首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Facile green synthesis of nickel nanostructures using natural polyol and morphology dependent dye adsorption properties
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Facile green synthesis of nickel nanostructures using natural polyol and morphology dependent dye adsorption properties

机译:使用天然多元醇和形态相关的染料吸附特性,可轻松地绿色合成镍纳米结构

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Ni nanostructures were synthesized using only castor oil (CSO), a natural polyol through green chemistry, CSO acts as multifunctional reagent (solvent, reducing agent, template, surface modifier) for the synthesis of the Ni nanostructures and imparts dye adsorption ability. The morphology of the nanostructures was found to be influenced by variations in the precursor concentration. A three molar concentration resulted in the formation of nanorods (ca. 11×75 nm) due to a higher nucleation rate as compared to growth rate, while a six molar concentration produces nanospheres (ca. 15 nm) due to a higher growth rate. The progress of the reaction, synthesis mechanism and surface functionalization of the Ni nanostructures were analyzed by Fourier transform infrared (FT-IR) spectroscopy. The interaction of Ni~(2+) with electron rich sites in the CSO resulted in the reduction of Ni~(2+) to Ni(0). The cubic lattice of the synthesized nanostructures, phase and preferred growth direction of the nanorods along the [200] plane were determined by correlation of X-ray diffraction (XRD) results with that of transmission electron microscopy (TEM) analysis. The adsorption ability of the magnetic Ni nanostructures was analyzed using parameters such as the adsorption kinetics (rate and order of adsorption), maximum adsorption capacity (250 mg g~(-1) (nanospheres) and 142 mg g~(-1) (nanorods)), effect of initial concentration of dye/adsorbent and contact time. The Langmuir and Freundlich adsorption isotherms were employed for an understanding of the nature (chemisorption or physisorption) of the dye adsorption. The magnetic nature of the adsorbent helps in the fast, economical separation of an adsorbed particle in comparison to non-magnetic dye adsorbents. The better and favorable adsorption (R_L value) of the dye on the synthesized Ni nanostructures, makes them a potential adsorbent for the removal of toxic dyes from industrial effluents.
机译:Ni纳米结构仅使用蓖麻油(CSO)(一种通过绿色化学方法生成的天然多元醇)合成,CSO用作多功能试剂(溶剂,还原剂,模板,表面改性剂),用于合成Ni纳米结构并赋予染料吸附能力。发现纳米结构的形态受前体浓度变化的影响。与生长速率相比,三摩尔浓度的成核速率较高,导致形成纳米棒(约11×75 nm),而六摩尔浓度由于较高的生长速率,生成纳米棒(约15 nm)。利用傅立叶变换红外光谱(FT-IR)分析了镍纳米结构的反应,合成机理和表面功能化的进展。 Ni〜(2+)与CSO中富电子位点的相互作用导致Ni〜(2+)还原为Ni(0)。通过X射线衍射(XRD)结果与透射电子显微镜(TEM)分析的相关性,确定了合成纳米结构的立方晶格,沿[200]平面的纳米棒的相和优选生长方向。使用诸如吸附动力学(吸附速率和吸附顺序),最大吸附容量(250 mg g〜(-1)(纳米球)和142 mg g〜(-1)()等参数分析磁性Ni纳米结构的吸附能力。纳米棒)),染料/吸附剂初始浓度和接触时间的影响。使用Langmuir和Freundlich吸附等温线来了解染料吸附的性质(化学吸附或物理吸附)。与非磁性染料吸附剂相比,吸附剂的磁性有助于快速,经济地分离被吸附的颗粒。染料在合成的镍纳米结构上具有更好的吸附效果(R_L值),使其成为从工业废水中去除有毒染料的潜在吸附剂。

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