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HZO@SGH对水溶液中氟化物的吸附性能及机理

[Adsorption Performance and Mechanism of HZO@SGH for the Removal of Fluoride from Aqueous Solution].

作者信息

Ma Fu-Zhen, Zhou Shao-Qi, Liu Ze-Jun, Zhi Liang-Liang, Zhou Xuan

机构信息

School of Environment and Energy, South China University of Technology, Guangzhou 510006, China.

Guizhou Academy of Sciences, Guiyang 550001, China.

出版信息

Huan Jing Ke Xue. 2018 Feb 8;39(2):828-837. doi: 10.13227/j.hjkx.201705291.

Abstract

Three-dimensional porous composites based on hydrous zirconium oxide and self-assembled graphene hydrogels (HZO@SGH) were successfully synthesized via homogeneous precipitation. HZO@SGH was characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), and X-ray photoelectron spectroscopy (XPS) to investigate the morphology and the defluoridation mechanism. The adsorption performance and mechanism of HZO@SGH for fluoride was investigated via batch adsorption experiments. The results revealed that the adsorption capacity of HZO@SGH for fluoride was obviously higher than that of HZO or SGH singly. The adsorption data for fluoride onto HZO@SGH complied with the pseudo-second-order kinetic model, indicating that the adsorption rate was mainly controlled by chemical adsorption. The adsorption process could be described well with the Dubinin-Radushkevich isotherm model, as the maximum adsorption capacity was approximately 31.79 mg·g, which is higher than that of some zirconium-containing adsorbents, as previously reported. HZO@SGH showed excellent adsorption properties in the fluoride solution contained NO, Cl, and a low concentration of SO (≤ 10 mg·L) at low pH (3-6.5). The preparation of HZO@SGH was convenient and environmentally friendly, as it was easily separated from the fluoride solution and did not cause secondary pollution. Hence, the prospect of HZO@SGH in practice was brilliant.

摘要

通过均匀沉淀法成功合成了基于水合氧化锆和自组装石墨烯水凝胶的三维多孔复合材料(HZO@SGH)。采用X射线衍射(XRD)、扫描电子显微镜(SEM)、傅里叶变换红外光谱(FTIR)和X射线光电子能谱(XPS)对HZO@SGH进行表征,以研究其形态和脱氟机理。通过批量吸附实验研究了HZO@SGH对氟化物的吸附性能和机理。结果表明,HZO@SGH对氟化物的吸附容量明显高于单独的HZO或SGH。氟化物在HZO@SGH上的吸附数据符合准二级动力学模型,表明吸附速率主要受化学吸附控制。吸附过程可用Dubinin-Radushkevich等温线模型很好地描述,因为最大吸附容量约为31.79 mg·g,高于先前报道的一些含锆吸附剂。在低pH值(3-6.5)下,HZO@SGH在含有NO、Cl和低浓度SO(≤10 mg·L)的氟化物溶液中表现出优异的吸附性能。HZO@SGH的制备方便且环保,因为它易于从氟化物溶液中分离且不会造成二次污染。因此,HZO@SGH在实际应用中的前景广阔。

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