Lin Kun-Yi Andrew, Liu Yu-Ting, Chen Shen-Yi
Department of Environmental Engineering, National Chung Hsing University, 250 Kuo-Kuang Road, Taichung, Taiwan, ROC.
Department of Soil and Environmental Sciences, National Chung Hsing University, 250 Kuo-Kuang Road, Taichung, Taiwan, ROC.
J Colloid Interface Sci. 2016 Jan 1;461:79-87. doi: 10.1016/j.jcis.2015.08.061. Epub 2015 Aug 28.
To provide safe drinking water, fluoride in water must be removed and adsorption processes appear to be the most widely used method. Metal organic frameworks (MOFs) represent a new class of adsorbents that have been used in various adsorption applications. To study the adsorption mechanism of fluoride to MOFs in water and obtain related adsorption parameters, we synthesized a zirconium-based MOF with a primary amine group on its ligand, named UiO-66-NH2. The kinetics, adsorption isotherm and thermodynamics of fluoride adsorption to UiO-66-NH2 were investigated. The crystalline structure of UiO-66-NH2 remained intact and the local structure of zirconium in UiO-66-NH2 did not change significantly after being exposed to fluoride. The kinetics of the fluoride adsorption in UiO-66-NH2 could be well represented by the pseudo second order rate law. The enthalpy of the adsorption indicates that the F(-) adsorption to UiO-66-NH2 was classified as a physical adsorption. However, the comparison between the adsorption capacities of UiO-66-NH2 and UiO-66 suggests that the fluoride adsorption to UiO-66-NH2 might primarily involve a strong interaction between F(-) and the metal site. The fluoride adsorption capacity of UiO-66-NH2 was found to decrease when pH>7. While the presence of chloride/bromide ions did not noticeably change the adsorption capacity of UiO-66-NH2, the ionic surfactants slightly affected the adsorption capacity of UiO-66-NH2. These findings provide insights to further optimize the adsorption process for removal of fluoride using zirconium-based MOFs.
为了提供安全的饮用水,必须去除水中的氟化物,吸附过程似乎是应用最广泛的方法。金属有机框架(MOF)是一类新型吸附剂,已用于各种吸附应用。为了研究水中氟化物对MOF的吸附机理并获得相关吸附参数,我们合成了一种配体上带有伯胺基团的锆基金属有机框架,命名为UiO-66-NH2。研究了氟化物对UiO-66-NH2吸附的动力学、吸附等温线和热力学。UiO-66-NH2的晶体结构保持完整,暴露于氟化物后,UiO-66-NH2中锆的局部结构没有明显变化。UiO-66-NH2中氟化物吸附的动力学可以用拟二级速率方程很好地描述。吸附焓表明F(-)对UiO-66-NH2的吸附属于物理吸附。然而,UiO-66-NH2和UiO-66吸附容量的比较表明,氟化物对UiO-66-NH2的吸附可能主要涉及F(-)与金属位点之间的强相互作用。发现当pH>7时,UiO-66-NH2的氟化物吸附容量降低。虽然氯离子/溴离子的存在没有明显改变UiO-66-NH2的吸附容量,但离子表面活性剂对UiO-66-NH2的吸附容量有轻微影响。这些发现为进一步优化使用锆基金属有机框架去除氟化物的吸附过程提供了见解。