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一种基于锆的纳米颗粒,可显著增强砷酸盐的吸附:合成、表征和性能。

A zirconium based nanoparticle for significantly enhanced adsorption of arsenate: Synthesis, characterization and performance.

机构信息

Division of Environmental Science and Engineering, National University of Singapore, 10 Kent Ridge Crescent, Singapore 119260, Singapore.

出版信息

J Colloid Interface Sci. 2011 Feb 15;354(2):785-92. doi: 10.1016/j.jcis.2010.10.041. Epub 2010 Oct 23.

Abstract

In this study, a zirconium nanoparticle sorbent for significantly enhanced adsorption of arsenate (As(V)) was successfully synthesized. The characterization of the zirconium nanoparticle sorbent and its adsorption behavior for arsenate were investigated. The HRTEM micrographs showed that the sorbent was nanoscale with particle sizes ranging from 60 to 90nm. The thermal gravimetric and elemental analyses indicated that the sorbent had a molecular formula of Zr(2)(OH)(6)SO(4)·3H(2)O. The X-ray diffraction study revealed that the sorbent was amorphous. The potentiometric titration study demonstrated the surface charge density of the sorbent decreased with an increase in solution pH, and the pH of zero point charge of the sorbent was around 2.85. The kinetics study showed that most of the uptake took place in the first 6h, and the adsorption equilibrium was obtained within 12h. The optimal pH for As(V) adsorption was between 2.5 and 3.5. The Langmuir equation well described the adsorption isotherm; the maximum adsorption capacity of 256.4mg As/g was found at the optimal pH, better than most of sorbents available in the market. The presence of fluoride or nitrate did not obviously affect the adsorption of As(V) onto the sorbent; however, the existence of humic acid, phosphate or silicate in aqueous solution significantly reduced the uptake of As(V). The humic acid did not cause the reduction of the As(V). The FTIR and XPS spectroscopic analyses revealed that surface hydroxyl and sulfur-containing groups played important roles in the adsorption.

摘要

在这项研究中,成功合成了一种用于显著增强吸附砷酸盐(As(V))的氧化锆纳米颗粒吸附剂。对氧化锆纳米颗粒吸附剂的表征及其对砷酸盐的吸附行为进行了研究。HRTEM 显微照片显示,吸附剂具有纳米级尺寸,粒径范围为 60 至 90nm。热重和元素分析表明,吸附剂的分子式为 Zr(2)(OH)(6)SO(4)·3H(2)O。X 射线衍射研究表明,吸附剂为无定形。电位滴定研究表明,吸附剂的表面电荷密度随溶液 pH 值的增加而降低,吸附剂的等电点 pH 值约为 2.85。动力学研究表明,大部分吸附在最初的 6 小时内进行,12 小时内达到吸附平衡。最佳的 As(V)吸附 pH 值在 2.5 和 3.5 之间。Langmuir 方程很好地描述了吸附等温线;在最佳 pH 值下,发现最大吸附容量为 256.4mg As/g,优于市场上大多数可用的吸附剂。氟化物或硝酸盐的存在并没有明显影响 As(V)在吸附剂上的吸附;然而,在水溶液中存在腐殖酸、磷酸盐或硅酸盐会显著降低 As(V)的摄取量。腐殖酸不会导致 As(V)的还原。FTIR 和 XPS 光谱分析表明,表面羟基和含硫基团在吸附中起重要作用。

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