Halloysite-Magnesium Silicate Composites as Adsorbent for Removal of Methylene Blue and Heavy Metals from Aqueous Solution

Junyeong Jeon, J. Jeon, S. Shin, Younki Lee
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Abstract

Objectives : The thermal stability of halloysite and magnesium silicate is discussed in terms of microstructural change and adsorption behavior to optimize their composite as an absorbent for methylene blue (MB) and heavy metal ions removal from an aqueous solution.Methods : Halloysite-magnesium silicate tubular composites with high adsorption capacity of methylene blue and heavy metal ions were prepared with extrusion and consequent firing. To define the firing temperature of the tubular media, the microstructure and the adsorption equilibrium characterized the thermal stability of halloysite and magnesium silicateResults and Discussion : The magnesium silicate used in this study shows broad peaks in x-ray diffraction; however, the treatment of 750℃ induces its crystallization. The specific surface area of the magnesium silicate is also gradually decreased along with the firing temperature increase. No significant degradation in methylene blue adsorption capacity for magnesium silicate is observed until 500℃-treatment. However, the higher firing temperature reduces the capacity: 6.9%P, 27.3%P, and 91.2%P decrease for 600℃, 700℃, and 750℃, respectively. Regardless of heat treatment, the Langmuir isotherm equation represents the adsorption equilibria well compared to the Freundlich model. The tubular media of the halloysite – 30 wt% of magnesium silicate fired at 600℃ exhibits a high specific surface area of 115 m2 g-1 and a relative porosity of 43.5%. Compared to the halloysite-only tubular media, the adsorption capacity of the composites is significantly improved with the incorporation of magnesium silicate. The adsorption capacity of 168h for methylene blue is more than tripled, 29.8 mg g-1, and the adsorption capacity of Cr(III), Cu(II), and Zn(II) is also greatly enhanced by more than 4.8 times.Conclusion : The thermal stability of magnesium silicate is investigated for use as an additive adsorbent in terms of the microstructure and the adsorption capacity. Even at 600℃ of the firing temperature, magnesium silicate shows a higher specific surface area and higher adsorption capacity of MB compared to those of the halloysite; the adsorption fits well into Langmuir behavior. The addition of magnesium silicate into the halloysite media significantly enhances its adsorption capacity for MB and heavy metal ions such as Cr(III), Cu(II), and Zn(II).
Halloysite硅酸镁复合材料作为吸附剂去除水溶液中亚甲基蓝和重金属
目的:从微观结构变化和吸附行为的角度讨论了海洛石和硅酸镁的热稳定性,以优化其复合材料作为从水溶液中去除亚甲基蓝(MB)和重金属离子的吸收剂。方法:采用挤压烧结法制备对亚甲基蓝和重金属离子具有高吸附能力的Halloysite硅酸镁管状复合材料。为了确定管状介质的烧制温度,对其微观结构和吸附平衡进行了表征。结果与讨论:本研究中使用的硅酸镁在x射线衍射中显示出宽峰;但750℃处理使其结晶。硅酸镁的比表面积也随着焙烧温度的升高而逐渐减小。500℃处理后,亚甲蓝对硅酸镁的吸附能力没有明显下降。然而,较高的焙烧温度降低了容量:600℃、700℃和750℃分别降低了6.9%P、27.3%P和91.2%P。与Freundlich模型相比,无论热处理如何,Langmuir等温线方程都能很好地代表吸附平衡。在600℃下烧制的含30%硅酸镁的halloysite管状介质具有115 m2 g-1的高比表面积和43.5%的相对孔隙率。与仅含Halloysites的管状介质相比,加入硅酸镁显著提高了复合材料的吸附能力。168h对亚甲蓝的吸附能力增加了两倍多,达到29.8mg g-1,对Cr(III)、Cu(II)和Zn(II)的吸附能力也大大提高了4.8倍以上。结论:从微观结构和吸附性能两方面考察了硅酸镁作为添加剂吸附剂的热稳定性。在烧成温度为600℃时,硅酸镁对MB的比表面积和吸附能力均高于水铝石;该吸附很好地符合Langmuir行为。将硅酸镁添加到辉沸石介质中显著提高了其对MB和重金属离子如Cr(III)、Cu(II)和Zn(II)的吸附能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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