MOE Key Laboratory of Resources and Environmental System Optimization, College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, PR China.
MOE Key Laboratory of Resources and Environmental System Optimization, College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, PR China.
J Hazard Mater. 2020 Nov 15;399:123081. doi: 10.1016/j.jhazmat.2020.123081. Epub 2020 Jun 5.
Elimination of U(VI) from polluted solutions is important for human health and environmental safety. In this work, a relatively low-cost 3D flower-like phosphate-functionalized layered double hydroxides (phos-LDH) was fabricated by a one-pot hydrothermal method. The prepared phos-LDH inherited the structure of 3D flower-like layered double hydroxides (LDH), and had a higher specific surface area (∼203.4 m⋅g) than that of LDH. The kinetic process indicated that U(VI) adsorption onto phos-LDH achieved equilibrium within 15 min and obeyed general order model. The adsorption isotherms of phos-LDH illustrated that the U(VI) adsorption obeyed Langmuir model, the adsorption capability of phos-LDH can reach 923.1 mg⋅g at 298 K. The U(VI) adsorption was a spontaneous and endothermic process according to the thermodynamic data. There was the electrostatic attraction between U(VI) and phos-LDH at pH = 5.0. FTIR and XPS analyses educed that the hydroxyl and phosphate groups played a very useful role for the complexation between U(VI) and phos-LDH. In addition, the excellent selective adsorption capability for U(VI) in competitive cation and anion solutions further confirmed the practical application of phos-LDH in real wastewater treatment.
从污染溶液中去除 U(VI) 对人类健康和环境安全很重要。在这项工作中,通过一步水热法制备了一种相对低成本的 3D 花状磷酸盐功能化层状双氢氧化物(phos-LDH)。所制备的 phos-LDH 继承了 3D 花状层状双氢氧化物(LDH)的结构,比 LDH 具有更高的比表面积(∼203.4 m⋅g)。动力学过程表明,U(VI) 吸附到 phos-LDH 上在 15 分钟内达到平衡,并符合一般阶数模型。phos-LDH 的吸附等温线表明,U(VI) 的吸附符合 Langmuir 模型,在 298 K 时,phos-LDH 的吸附能力可达 923.1 mg⋅g。根据热力学数据,U(VI) 的吸附是自发和吸热的过程。在 pH = 5.0 时,U(VI) 和 phos-LDH 之间存在静电吸引。FTIR 和 XPS 分析得出,羟基和磷酸根在 U(VI) 和 phos-LDH 之间的络合中起着非常有用的作用。此外,在竞争阳离子和阴离子溶液中对 U(VI) 具有优异的选择性吸附能力,进一步证实了 phos-LDH 在实际废水处理中的实际应用。