Preparation of acid-modified waste mask-based activated carbon grafted chitosan composites and their efficient removal of uranyl ions

IF 8.5 1区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY International Journal of Biological Macromolecules Pub Date : 2025-05-01 Epub Date: 2025-04-23 DOI:10.1016/j.ijbiomac.2025.143431
Xiaoxia He, Chao Zhou, Yifan Meng, Weiting Xiao, Pengfei Yang
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Abstract

Resource utilization of waste masks is of great significance for environmental protection. In this study, acid-modified waste mask-based activated carbon grafted chitosan composites (CSMA) were prepared using waste masks as a carbon source, chemically modified by introducing sulphonic acid groups through sulfuric acid treatment and further loaded with chitosan, and used for the efficient removal of U(VI) from aqueous solutions. Various characterization techniques, including SEM, FTIR, BET, and XPS, were utilized to investigate the microstructure and surface chemistry of CSMA. The experimental data indicate that optimal adsorption efficiency for CSMA about U(VI) is achieved at a pH of 7, utilizing an adsorbent dosage(m/V) of 0.1 g·L-1, a reaction duration of 6 h, and a temperature of 303 K. Under these conditions, the maximum adsorption capacity reaches 467.93 mg/g. From the kinetic and thermodynamic results of adsorption, it can be seen that the process of CSMA adsorption on uranyl ions was more in line with the Langmuir isotherm model and pseudo-second-order model. Thermodynamic analysis further confirms that this adsorption process is spontaneous and endothermic. In complex aqueous environments containing various co-existing ions, CSMA demonstrates good selective adsorption capabilities. After several testing cycles, CSMA still maintains a high adsorption efficiency for U(VI). Mechanistic studies using XPS/FTIR suggested that U(VI) capture was governed by coordination/chelation with surface functional groups (-NH2, -OH, -SO3H). This study not only presents an innovative approach for resource utilization from discarded masks but also offers an efficient and cost-effective solution for removing radioactive nuclides and facilitating environmental remediation.

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酸改性废膜活性炭接枝壳聚糖复合材料的制备及其对铀酰离子的高效去除
对废旧口罩进行资源化利用,对环境保护具有重要意义。本研究以废掩模为碳源,经硫酸处理后引入磺酸基进行化学改性,再负载壳聚糖,制备酸改性废掩模基活性炭接枝壳聚糖复合材料(CSMA),用于高效去除水溶液中的U(VI)。利用SEM、FTIR、BET和XPS等表征技术研究了CSMA的微观结构和表面化学性质。实验结果表明,在pH = 7、吸附剂用量(m/V)为0.1 g·L-1、反应时间为6 h、温度为303 K的条件下,CSMA对U(VI)的吸附效果最佳。在此条件下,最大吸附量可达467.93 mg/g。从吸附的动力学和热力学结果可以看出,CSMA对铀酰离子的吸附过程更符合Langmuir等温模型和拟二阶模型。热力学分析进一步证实了该吸附过程是自发吸热的。在多种离子共存的复杂水环境中,CSMA表现出良好的选择性吸附能力。经过多次循环测试,CSMA对U(VI)仍保持较高的吸附效率。利用XPS/FTIR进行的机理研究表明,U(VI)的捕获是由与表面官能团(-NH2, -OH, -SO3H)的配位/螯合控制的。本研究不仅为废弃口罩的资源化利用提供了创新途径,也为放射性核素的去除和环境修复提供了高效、经济的解决方案。
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来源期刊
International Journal of Biological Macromolecules
International Journal of Biological Macromolecules 生物-生化与分子生物学
CiteScore
13.70
自引率
9.80%
发文量
2728
审稿时长
64 days
期刊介绍: The International Journal of Biological Macromolecules is a well-established international journal dedicated to research on the chemical and biological aspects of natural macromolecules. Focusing on proteins, macromolecular carbohydrates, glycoproteins, proteoglycans, lignins, biological poly-acids, and nucleic acids, the journal presents the latest findings in molecular structure, properties, biological activities, interactions, modifications, and functional properties. Papers must offer new and novel insights, encompassing related model systems, structural conformational studies, theoretical developments, and analytical techniques. Each paper is required to primarily focus on at least one named biological macromolecule, reflected in the title, abstract, and text.
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