Li Jing, Lin Guo, Tan Fangguan, Fu Likang, Zeng Biao, Wang Shixing, Hu Tu, Zhang Libo
The State Key Laboratory of Refractories and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, PR China.
State Key Laboratory of Complex Nonferrous Metal Resources Clean Utilization, Kunming University of Science and Technology, Kunming, Yunnan 650093, PR China; The State Key Laboratory of Refractories and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, PR China.
J Colloid Interface Sci. 2023 Dec;651:659-668. doi: 10.1016/j.jcis.2023.08.022. Epub 2023 Aug 6.
In the context of industrialization and severe wastewater pollution, mercury ions pose a major threat due to their high toxicity. However, traditional adsorbents and common metal-organic framework (MOF) materials have limited effectiveness. This study focuses on combining magnetic materials with functionalized titanium-based MOF composite (SNN-MIL-125(Ti)@FeO) to improve mercury ion adsorption. Through comprehensive characterization and analysis, the adsorption performance and mechanism of the material were studied. The optimal adsorption of the material was achieved at pH 5, exhibiting a pseudo-second-order adsorption model and the Hill theoretical capacity of 668.98 mg/g. Hill and Tempkin models confirmed the presence of chemical and physical adsorption sites on the material surface. Thermodynamic experiments showed a spontaneous endothermic process. Despite the presence of interfering ions, the material exhibited high selectivity for mercury ions. After four cycles, adsorption performance decreased by only 8%, indicating excellent reusability. Nitrogen- and sulfur-containing functional groups played a key role in mercury ion adsorption. In conclusion, SNN-MIL-125(Ti)@FeO, as a magnetic MOF adsorption material, showed potential for effective remediation of mercury-contaminated wastewater. This study contributes to the development of efficient adsorption materials and enhances the understanding of their mechanism.
在工业化和严重废水污染的背景下,汞离子因其高毒性构成重大威胁。然而,传统吸附剂和普通金属有机框架(MOF)材料的效果有限。本研究着重于将磁性材料与功能化钛基金属有机框架复合材料(SNN-MIL-125(Ti)@FeO)相结合,以提高汞离子吸附性能。通过全面的表征和分析,研究了该材料的吸附性能及机理。该材料在pH值为5时实现最佳吸附,呈现准二级吸附模型,希尔理论吸附量为668.98 mg/g。希尔模型和坦普金模型证实材料表面存在化学和物理吸附位点。热力学实验表明这是一个自发的吸热过程。尽管存在干扰离子,该材料对汞离子仍表现出高选择性。经过四个循环后,吸附性能仅下降8%,表明其具有出色的可重复使用性。含氮和含硫官能团在汞离子吸附中起关键作用。总之,SNN-MIL-125(Ti)@FeO作为一种磁性MOF吸附材料,在有效修复汞污染废水方面显示出潜力。本研究为高效吸附材料的开发做出了贡献,并增进了对其机理的理解。