Deng Yu-Ying, Xiao Xin-Feng, Wang Dan, Han Bo, Gao Yu, Xue Jian-Liang
College of Chemistry and Environment Engineering, Shandong University of Science and Technology, Qingdao, Shandong 266590, China.
J Nanosci Nanotechnol. 2020 Mar 1;20(3):1660-1669. doi: 10.1166/jnn.2020.17157.
Cu-BTC was synthesised by hydrothermal method in this study to adsorb and remove the toxic heavy metal hexavalent chromium Cr(VI) in water. The EDTA-chitosan/Cu-BTC was prepared by the surface modification of Cu-BTC with EDTA-modified chitosan. The initial concentration effects of adsorbed chromium solution, adsorbent dosage, adsorption time, adsorption temperature and pH of chromium solution on adsorption capacity were estimated using the single-factor optimisation experiment. Results show that the adsorption capacity of the modified composite was higher than that of Cu-BTC. Cu-BTC and EDTA-chitosan/Cu-BTC exhibited significant adsorption of Cr(VI) under acidic conditions in water and basically independent of temperature. Their adsorption processes conformed with the pseudo-second-order model. The Langmuir adsorption isotherm model obtained the adsorption isotherm, which indicated that the adsorption process was single molecule adsorption. Isotherm fitting obtained the maximum adsorption amounts of Cr(VI) for Cu-BTC and EDTA-chitosan/Cu-BTC at 27.32 and 46.51 mg·g, respectively. Factor and principal component analyses show that the main factors affecting the adsorption of Cr(VI) in the EDTA-chitosan/Cu-BTC composites are pH, initial concentration and adsorption time. Therefore, EDTA-chitosan-modified Cu-BTC was a more feasible metal-organic framework material than Cu-BTC because of better adsorption performance, which can be used for adsorption removal of Cr(VI) in water.
本研究采用水热法合成了Cu-BTC,用于吸附和去除水中有毒重金属六价铬Cr(VI)。通过用EDTA改性壳聚糖对Cu-BTC进行表面改性制备了EDTA-壳聚糖/Cu-BTC。采用单因素优化实验评估了吸附铬溶液的初始浓度、吸附剂用量、吸附时间、吸附温度和铬溶液pH值对吸附容量的影响。结果表明,改性复合材料的吸附容量高于Cu-BTC。Cu-BTC和EDTA-壳聚糖/Cu-BTC在水中酸性条件下对Cr(VI)表现出显著吸附,且基本不受温度影响。它们的吸附过程符合准二级模型。Langmuir吸附等温线模型得到了吸附等温线,表明吸附过程为单分子吸附。等温线拟合得出Cu-BTC和EDTA-壳聚糖/Cu-BTC对Cr(VI)的最大吸附量分别为27.32和46.51 mg·g。因子分析和主成分分析表明,影响EDTA-壳聚糖/Cu-BTC复合材料对Cr(VI)吸附的主要因素是pH值、初始浓度和吸附时间。因此,EDTA-壳聚糖改性的Cu-BTC由于具有更好的吸附性能,是一种比Cu-BTC更可行的金属有机骨架材料,可用于吸附去除水中的Cr(VI)。