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Mixed Oxide Layered Double Hydroxide Materials: Synthesis Characterization and Efficient Application for Mn

机译:混合氧化物层状双氢氧化物材料:Mn的合成表征和有效应用

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摘要

Magnesium–aluminum (Mg-Al) and magnesium–aluminum–nickel (Mg-Al-Ni) layered double hydroxides (LDHs) were synthesized by the co-precipitation method. The adsorption process of Mn2+ from synthetic wastewater was investigated. Formation of the layered double hydroxides and adsorption of Mn2+ on both Mg-Al and Mg-Ni-Al LDHs were observed by X-ray diffraction (XRD), Scanning Electron Microscopy (SEM) and Energy Dispersive Spectrometry (EDX) analysis. XRD patterns for prepared LDHs presented sharp and symmetrical peaks. SEM studies revealed that Mg-Al LDH and Mg-Al-Ni LDH exhibit a non-porous structure. EDX analysis showed that the prepared LDHs present uniformly spread elements. The adsorption equilibrium on these LDHs was investigated at different experimental conditions such as: Shaking time, initial Mn2+ concentration, and temperatures (10 and 20 °C). The parameters were controlled and optimized to remove the Mn2+ from synthetic wastewater. Adsorption isotherms of Mn2+ were fitted by Langmuir and Freundlich models. The obtained results indicated that the isotherm data fitted better into the Freundlich model than the Langmuir model. Adsorption capacity of Mn2+ gradually increased with temperature. The Langmuir constant (KL) value of Mg-Al LDH (0.9529 ± 0.007 L/mg) was higher than Mg-Al-Ni LDH (0.1819 ± 0.004 L/mg), at 20 °C. The final adsorption capacity was higher for Mg-Al LDH (91.85 ± 0.087%) in comparison with Mg-Al-Ni LDH (35.97 ± 0.093%), at 20 °C. It was found that the adsorption kinetics is best described by the pseudo-second-order model. The results indicated that LDHs can be considered as a potential material for adsorption of other metallic ions from wastewater.
机译:通过共沉淀法合成了镁 - 铝(Mg-Al)和镁 - 铝 - 镍(Mg-Al-Ni)层叠双氢氧化物(LDH)。研究了来自合成废水的Mn2 +的吸附过程。通过X射线衍射(XRD),扫描电子显微镜(SEM)和能量分散光谱(EDX)分析,观察到层状双氢氧化物和MN2 +的吸附MN2 +。用于制备的LDH的XRD图案呈现出锐度和对称的峰。 SEM研究表明,Mg-Al LDH和Mg-Al-Ni LDH表现出无孔结构。 EDX分析表明,制备的LDH将均匀地扩散元件。在不同的实验条件下研究了这些LDH的吸附平衡,例如:摇动时间,初始MN2 +浓度和温度(10和20℃)。控制和优化参数以从合成废水中除去MN2 +。 Langmuir和Freundlich模型安装了MN2 +的吸附等温线。所获得的结果表明,等温数据拟合进入Freundlich模型而不是Langmuir模型。 Mn2 +的吸附能力随温度逐渐增加。 Mg-Al LDH的Langmuir常数(KL)值(0.9529±0.007L / mg)高于Mg-Al-Ni LDH(0.1819±0.004L / mg),在20℃。与Mg-Al-Ni LDH(35.97±0.093%)相比,Mg-Al LDH(91.85±0.087%)的最终吸附容量较高(35.97±0.093%),在20℃。发现吸附动力学最好由伪二阶模型描述。结果表明,LDH可以被认为是用于吸附来自废水的其他金属离子的潜在材料。

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