Department of Chemical Engineering, Federal University of Technology, PMB.65, Minna, Niger, Nigeria.
Department of Chemical Engineering, Chukwuemeka Odumegwu Ojukwu University, PMB 02, Uli, Anambra, Nigeria.
Sci Rep. 2021 Jan 8;11(1):75. doi: 10.1038/s41598-020-79857-z.
The efficient removal of toxic metals ions from chemical industry wastewater is considered problematic due to the existence of pollutants as mixtures in the aqueous matrix, thus development of advanced and effective treatment method has been identified as a panacea to the lingering problems of heavy metal pollution. In this study, KIAgNPs decorated MWCNTs nano adsorbent was developed using combination of green chemistry protocol and chemical vapor deposition techniques and subsequently characterized using UV-Vis, HRTEM, HRSEM, XRD, FTIR and XPS. The adsorptive efficiency of MWCNTs-KIAgNPs for the removal of Cr(VI), Ni(II), Fe(II), Cd(II) and physico-chemical parameters like pH, TDS, COD, BOD, nitrates, sulphates, chlorides and phosphates from chemical industrial wastewater was examined in both batch and fixed bed systems. The result exhibited successful deposition of KIAgNPs on the surface of MWCNTs as confirmed by the microstructures, morphology, crystalline nature, functional groups and elemental characteristics of the MWCNTs-KIAgNPs. Optimum batch adsorption parameters include; pH (3 for Cr(VI) and 6 for Ni(II), Fe(II) and Cd(II) ions), contact time (60 min), adsorbent dosage (40 mg) and temperature (318 K). The binding capacities were obtained as follows; Cr (229.540 mg/g), Ni (174.784 mg/g), Fe (149.552) and Cd (121.026 mg/g), respectively. Langmuir isotherm and pseudo-second order kinetic model best described the experimental data in batch adsorption, while the thermodynamic parameters validated the chemisorption and endothermic nature of the adsorption process. In continuous adsorption, the metal ions were effectively removed at low metal influent concentration, low flow rate and high bed depth, whereby the experimental data were designated by Thomas model. The high physico-chemical parameters in the wastewater were successfully treated in both batch and fixed bed systems to fall within WHO permissible concentrations. The adsorption/desorption study illustrated over 80% metal removal by MWCNTs-KIAgNPs even after 8th adsorption cycle. This study demonstrated excellent performance of MWCNTs-KIAgNPs for chemical industry wastewater treatment.
从化学工业废水中有效去除有毒金属离子被认为是有问题的,因为污染物作为混合物存在于水基质中,因此,开发先进有效的处理方法已被确定为解决重金属污染问题的灵丹妙药。在这项研究中,使用绿色化学协议和化学气相沉积技术的组合开发了 KIAgNPs 修饰的 MWCNTs 纳米吸附剂,并使用 UV-Vis、HRTEM、HRSEM、XRD、FTIR 和 XPS 对其进行了表征。MWCNTs-KIAgNPs 对 Cr(VI)、Ni(II)、Fe(II)、Cd(II)的吸附效率以及化学工业废水中的物理化学参数,如 pH、TDS、COD、BOD、硝酸盐、硫酸盐、氯化物和磷酸盐,在批量和固定床系统中进行了研究。结果表明,MWCNTs-KIAgNPs 的微观结构、形态、结晶性质、官能团和元素特性证实了 KIAgNPs 在 MWCNTs 表面的成功沉积。最佳批量吸附参数包括:pH(Cr(VI)为 3,Ni(II)、Fe(II)和 Cd(II)离子为 6)、接触时间(60 分钟)、吸附剂用量(40mg)和温度(318K)。结合能力分别为:Cr(229.540mg/g)、Ni(174.784mg/g)、Fe(149.552)和 Cd(121.026mg/g)。在批量吸附中,Langmuir 等温线和拟二级动力学模型最能描述实验数据,而热力学参数验证了吸附过程的化学吸附和吸热性质。在连续吸附中,在低金属入口浓度、低流速和高床深的情况下,金属离子被有效去除,实验数据由 Thomas 模型指定。在批量和固定床系统中,成功处理了废水中的高物理化学参数,使其达到世界卫生组织允许的浓度范围内。吸附/解吸研究表明,即使经过第 8 次吸附循环,MWCNTs-KIAgNPs 仍能去除 80%以上的金属。这项研究表明,MWCNTs-KIAgNPs 在处理化学工业废水方面具有优异的性能。