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Effect of Preparation Conditions on the Adsorption of Heavy Metal Ions from Aqueous Solution by Mesoporous Silica Materials Prepared Using Organic Template (HDTMAB)

机译:制备条件对使用有机模板(HDTMAB)制备的介孔二氧化硅材料吸附水溶液中重金属离子的影响

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This paper describes the simple hydrothermal preparation of self-adsorbing mesoporous materials using hexadecyltrimethyl ammoniumbromide (HDTMAB) as the template without any functionalization. The template was readily removed upon calcination, as confirmed through Fourier transform infrared spectroscopic analysis. The effects of preparation methods were explored under various experimental conditions. We found that the temperature, time, calcination conditions, and pH all affected the distribution of pore sizes and the surface area, whereas higher pH (strong base) did not favor the preparation of a porous medium because of OH inhibition. We obtained a relatively high surface area (1568.72 m~2·g~(-1)) and large pore size (3.07 nm) under the optimal reaction conditions. A study of the Langmuir adsorption of metal ions (e.g., Pb~(2+), Cu~(2+), Ni~(2+)) revealed that it was a physical phenomenon with the maximum adsorption occurring for the sample prepared under the optimized experimental conditions, with Pb~(2+) (6.61 mg·g~(-1)) exhibiting enhanced adsorption relative to Cu~(2+) (3.46 mg·g~(-1)) and Ni~(2+) (2.25 mg·g~(-1)) because of its larger ionic radius and higher electronegativity. Thus, such as-synthesized mesoporous materials hold great potential for use in the removal of heavy metal ions from aqueous solutions compared to commercially available powdered activated carbon (PAC).
机译:本文描述了以十六烷基三甲基溴化铵(HDTMAB)为模板,无需任何功能化即可简单地水热制备自吸附介孔材料的方法。如通过傅立叶变换红外光谱分析所证实的,在煅烧时容易除去模板。在各种实验条件下探讨了制备方法的效果。我们发现温度,时间,煅烧条件和pH值均会影响孔径和表面积的分布,而较高的pH(强碱)由于具有OH抑制作用而不利于制备多孔介质。在最佳反应条件下,获得了较高的表面积(1568.72 m〜2·g〜(-1))和较大的孔径(3.07 nm)。对Langmuir吸附金属离子(例如Pb〜(2 +),Cu〜(2 +),Ni〜(2+))的研究表明,这是一种物理现象,对于在优化的实验条件,Pb〜(2+)(6.61 mg·g〜(-1))相对于Cu〜(2+)(3.46 mg·g〜(-1))和Ni〜(2)吸附增强+)(2.25 mg·g〜(-1)),因为其更大的离子半径和更高的电负性。因此,与可商购的粉状活性炭(PAC)相比,此类合成的中孔材料具有用于从水溶液中去除重金属离子的巨大潜力。

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