Removal of lead ions onto potassium-type fine-grained zeolite prepared from dry or wet milling treatment

Fumihiko Ogata , Mao Mitsuno , Noriaki Nagai , Yugo Uematsu , Chalermpong Saenjum , Naohito Kawasaki
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Abstract

Potassium-type zeolite (KZ) was prepared from coal fly ash by hydrothermal activation treatment using potassium hydroxide solution and potassium-type fine-grained zeolite was prepared by dry milling (KZ-D) or wet milling (KZ-W). The effects of the different treatments on the Pb2+ adsorption performance were assessed. KZ-W resulted in a much smaller particle diameter (0.61 ± 0.12 µm) than KZ-D (1.4 ± 0.48 µm) and KZ (6.5 ± 0.49 µm). KZ-W also realized a higher pore volume, mean pore diameter, and specific surface area, than KZ-D and KZ. Additionally, KZ-W realized a greater Pb2+ adsorption capacity (242.6 mg/g) than KZ (195.3 mg/g) or KZ-D (188.9 mg/g). The adsorption phenomena were fitted to the Freundlich and Langmuir models to clarify the Pb2+ adsorption mechanism, and then both models showed a good fit to the experimental data (the correlation coefficients of 0.914–0.996 for Freundlich model and 0.897–0.981 for Langmuir model). Additionally, the ion exchange capability, elemental distribution, and binding energy before and after adsorption were analyzed. The results indicated that the physicochemical characteristics of the tested adsorbent surface affected the Pb2+ adsorption capacity in the aqueous phase. According to kinetics, the pseudo-second-order model matched the experimental data (the correlation coefficients of 0.996–0.999). The samples also demonstrated selective adsorption of Pb2+ in a binary solution. The results demonstrated that KZ-W can effectively remove Pb2+ from the aqueous phase and that it may be a useful tool for preventing contamination of water bodies.

Abstract Image

通过干法或湿法研磨处理制备的钾型细粒沸石去除铅离子
利用氢氧化钾溶液对粉煤灰进行水热活化处理制备了钾型沸石(KZ),并通过干法研磨(KZ-D)或湿法研磨(KZ-W)制备了钾型细粒沸石。评估了不同处理方法对 Pb2+ 吸附性能的影响。KZ-W 的颗粒直径(0.61 ± 0.12 µm)远小于 KZ-D(1.4 ± 0.48 µm)和 KZ(6.5 ± 0.49 µm)。KZ-W 的孔隙体积、平均孔径和比表面积也高于 KZ-D 和 KZ。此外,KZ-W 的 Pb2+ 吸附能力(242.6 毫克/克)高于 KZ(195.3 毫克/克)或 KZ-D(188.9 毫克/克)。为了阐明 Pb2+ 的吸附机理,将吸附现象分别拟合到 Freundlich 和 Langmuir 模型中,结果表明这两个模型都与实验数据拟合良好(Freundlich 模型的相关系数为 0.914-0.996,Langmuir 模型的相关系数为 0.897-0.981)。此外,还分析了吸附前后的离子交换能力、元素分布和结合能。结果表明,被测吸附剂表面的理化特性影响了其在水相中的 Pb2+ 吸附能力。在动力学方面,伪二阶模型与实验数据相吻合(相关系数为 0.996-0.999)。样品还表现出对二元溶液中 Pb2+ 的选择性吸附。结果表明,KZ-W 能有效去除水相中的 Pb2+,是防止水体污染的有效工具。
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