Tran Thao Quynh Ngan, Nguyen Huu Trung, Kumar Subodh, Cao Xuan Thang
Faculty of Chemical Engineering, Industrial University of Ho Chi Minh City, Vietnam.
Department of Inorganic Chemistry, Faculty of Science, Palacký University, 17 Listopadu 12, CZ-77146 Olomouc, Czech Republic.
Beilstein J Nanotechnol. 2025 Sep 1;16:1522-1532. doi: 10.3762/bjnano.16.107. eCollection 2025.
Effective removal of trace heavy metal ions from aqueous bodies is a pressing problem and requires significant improvement in the area of absorbent material in terms of removal efficiency and sustainability. We propose an efficient strategy to enhance the adsorption efficiency of carbon nanotubes (CNTs) by growing dendrimers on their surface. First, CNTs were pre-functionalized with maleic acid (MA) via Diels-Alder reaction in presence of a deep eutectic solvent under ultrasonication. Subsequently, dendrimers of varying length were grown by the repeated reaction of ethylene diamine and MA. Raman spectroscopy was specifically used to confirm the Diels-Alder reaction on the surface of CNTs, and other characterization techniques (SEM, EDX, XRD, TGA, and FTIR) were applied to confirm the successive growth of the dendrimers. Highly dendrimerized CNTs were found to be more effective in removing heavy metal ions (Pb and Cd) from aqueous solutions with enhanced recyclability than less dendrimerized CNTs. Kinetic studies have revealed that the adsorption process followed a pseudo-second order kinetic model, and the rate-limiting step was mainly chemisorption. This study has not only excluded the involvement of harmful chemicals to pre-functionalize the CNTs with high loading but also provided an effective way to enhance the adsorption of heavy metal ions.
从水体中有效去除痕量重金属离子是一个紧迫的问题,在吸收材料领域,就去除效率和可持续性而言,需要有显著的改进。我们提出了一种有效的策略,通过在碳纳米管(CNTs)表面生长树枝状聚合物来提高其吸附效率。首先,在深共熔溶剂存在下,通过超声作用,利用狄尔斯-阿尔德反应使碳纳米管与马来酸(MA)进行预官能化。随后,通过乙二胺和马来酸的重复反应生长出不同长度的树枝状聚合物。拉曼光谱专门用于确认碳纳米管表面的狄尔斯-阿尔德反应,其他表征技术(扫描电子显微镜、能谱分析、X射线衍射、热重分析和傅里叶变换红外光谱)用于确认树枝状聚合物的连续生长。发现高度树枝状化的碳纳米管在从水溶液中去除重金属离子(铅和镉)方面比树枝状化程度较低的碳纳米管更有效,且具有更高的可回收性。动力学研究表明,吸附过程遵循准二级动力学模型,限速步骤主要是化学吸附。这项研究不仅排除了使用有害化学物质对碳纳米管进行高负载预官能化的情况,还提供了一种提高重金属离子吸附的有效方法。