Ouyang Yanquan, Xu Yuanxin, Zhao Limei, Deng Mingzhan, Yang Pengfei, Peng Guowen, Ke Guojun
School of Chemistry and Chemical Engineering, University of South China, Hengyang, 421001, China.
Hunan Key Laboratory for the Design and Application of Actinide Complexes, University of South China, Hengyang, 421001, China.
Sci Rep. 2021 Nov 3;11(1):21625. doi: 10.1038/s41598-021-01133-5.
Ternary zinc-nickel-aluminum hydrotalcites (ZnNiAl-LDHs) were prepared by hydrothermal synthesis. The structure and morphology of the materials were characterized using X-ray diffraction (XRD), fourier transform infrared spectroscopy (FT-IR), scanning electron microscopy (SEM), nitrogen adsorption-desorption (BET) and other test techniques. ZnNiAl-LDHs was applied in the treatment of uranium-containing wastewater, the effects of initial pH of the solution, adsorption temperature and contact time on its adsorption performance were systematically investigated, and the adsorption performance of ZnNiAl-LDHs and ZnAl-LDHs on uranyl ions were compared. The result showed that ZnNiAl-LDHs were 3D microspheres self-assembled from flakes, with a specific surface area of 102.02 m/g, which was much larger than that of flake ZnAl-LDHs (18.49 m/g), and the saturation adsorption capacity of ZnNiAl-LDHs for uranyl ions (278.26 mg/g) was much higher than that of ZnAl-LDHs for uranyl ions (189.16 mg/g), so the ternary ZnNiAl-LDHs had a more excellent adsorption capacity. In addition, kinetic and thermodynamic studies showed that the adsorption process of ZnNiAl-LDHs on uranyl ions conformed to the pseudo-second-order kinetic model and Langmuir isotherm model. The positive value of ΔH and the negative value of ΔG indicated that the adsorption process was endothermic and spontaneous. The adsorption mechanism was analyzed by X-ray energy spectroscopy (EDS), fourier transform infrared spectroscopy (FT-IR) and X-ray photoelectron spectroscopy (XPS). The results showed that the adsorption of uranyl ions by ZnNiAl-LDHs mainly consisted of complexation and ion substitution. The research results prove that ZnNiAl-LDHs is an adsorbent with low cost and excellent performance, and it has a good application prospect in the field of uranium-containing wastewater treatment.
采用水热合成法制备了三元锌镍铝水滑石(ZnNiAl-LDHs)。利用X射线衍射(XRD)、傅里叶变换红外光谱(FT-IR)、扫描电子显微镜(SEM)、氮吸附-脱附(BET)等测试技术对材料的结构和形貌进行了表征。将ZnNiAl-LDHs应用于含铀废水的处理,系统研究了溶液初始pH值、吸附温度和接触时间对其吸附性能的影响,并比较了ZnNiAl-LDHs和ZnAl-LDHs对铀酰离子的吸附性能。结果表明,ZnNiAl-LDHs为片状自组装而成的三维微球,比表面积为102.02 m/g,远大于片状ZnAl-LDHs(18.49 m/g),ZnNiAl-LDHs对铀酰离子的饱和吸附容量(278.26 mg/g)远高于ZnAl-LDHs对铀酰离子的饱和吸附容量(189.16 mg/g),因此三元ZnNiAl-LDHs具有更优异的吸附性能。此外,动力学和热力学研究表明,ZnNiAl-LDHs对铀酰离子的吸附过程符合准二级动力学模型和Langmuir等温线模型。ΔH为正值,ΔG为负值,表明吸附过程是吸热的且自发的。通过X射线能谱(EDS)、傅里叶变换红外光谱(FT-IR)和X射线光电子能谱(XPS)分析了吸附机理。结果表明,ZnNiAl-LDHs对铀酰离子的吸附主要包括络合作用和离子交换。研究结果证明,ZnNiAl-LDHs是一种低成本、性能优异的吸附剂,在含铀废水处理领域具有良好的应用前景。