负载Zr(IV)的香蕉皮生物质对水中氟阴离子的吸收效果

R. Aryal, B. R. Poudel, M. R. Pokhrel, H. Paudyal, K. N. Ghimire
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引用次数: 0

摘要

本研究报道了负载Zr(IV)的皂化香蕉皮(Zr(IV)-SBP)从水中吸收氟的电位。将Zr(IV)负载于香蕉皮生物质皂化后合成Zr(IV)-SBP,并采用场发射扫描电镜(FE-SEM)、傅里叶变换红外光谱(FTIR)和zeta电位分析等技术对其吸附性能进行了表征。通过批量实验考察了影响吸附剂吸附氟的因素。最佳pH为2.94,最佳接触时间为300 min。表征技术的结果表明,Zr(IV)-SBP具有显著的有利于氟离子吸附的吸附位点。氟在Zr(IV)-SBP上的吸附行为符合Langmuir吸附等温线和拟二级动力学模型。Langmuir等温模型下Zr(IV)-SBP的最大吸附量为36.02 mg/g。氯离子和硝酸盐等共存离子对氟的干扰很小,硫酸盐浓度的升高显著降低了二元体系对氟的吸附率,多体系对氟的吸附明显降低,这是共存干扰离子的协同作用所致。吸附的氟化物用2M NaOH溶液完全解吸。Zr(IV)-SBP的氟吸附性能表明,它是一种低成本、环保的氟离子修复方法,是避免水体烧蚀的有效替代方法之一。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effectiveness of Zr(IV)-Loaded Banana Peels Biomass for the Uptake of Fluoride Anion from Water
The present study reports the fluoride uptake potential of Zr(IV)-loaded saponified banana peels (Zr(IV)-SBP) from water. Zr(IV)-SBP was synthesized by loading Zr(IV) onto banana peel biomass after saponification and sorbent characterization was performed by using different techniques including FE-SEM (Field Emission Scanning Electron Microscopy), FTIR (Fourier Transform Infra-Red) spectroscopy and zeta potential analysis. Batch experiments were carried out to examine the monitoring factors for the uptake of fluoride onto the investigated adsorbent. The optimal pH and contact time were found to be 2.94 and 300 minutes, respectively. The results from characterization techniques concurred that Zr(IV)-SBP have prominent adsorption sites favorable for the sorption of fluoride ions. The sorption behavior of fluoride onto Zr(IV)-SBP was best fitted with the Langmuir adsorption isotherm and pseudo-second-order kinetics model. The maximum adsorption capacity of Zr(IV)-SBP was 36.02 mg/g using the Langmuir isotherm model. The coexisting ions like chloride and nitrate caused very small interference, elevated concentration of sulphate notably lowers the fluoride adsorption percentage in the binary system, and the sorption using multiple systems was lowered significantly which is due to the synergistic effect of co-existing interfering ion. The adsorbed fluoride was completely desorbed using 2M NaOH solution. Fluoride sorption performance of Zr(IV)-SBP demonstrated that it can be a low cost, environmentally benign and one of the highly potent alternatives for the remediation of fluoride ions to avoid ablation on the water.
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