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通过绿色方法制备的可持续沸石-银纳米复合材料用于减轻水污染物及建模方法

Sustainable Zeolite-Silver Nanocomposites via Green Methods for Water Contaminant Mitigation and Modeling Approaches.

作者信息

Ruíz-Baltazar Álvaro de Jesús, Reyes-López Simón Yobanny, Méndez-Lozano Néstor, Medellín-Castillo Nahum Andrés, Pérez Ramiro

机构信息

CONAHCYT-Centro de Física Aplicada y Tecnología Avanzada, Universidad Nacional Autónoma de México, Boulevard Juriquilla 3001, Santiago de Querétaro 76230, Mexico.

Laboratorio de Materiales Híbridos Nanoestructurados, Instituto de Ciencias Biomédicas, Departamento de Ciencias Químico-Biológicas, Universidad Autónoma de Ciudad Juárez, Anillo Envolvente del Pronaf y Estocolmo s/n, Zona Pronaf, Ciudad Juárez 32310, Mexico.

出版信息

Nanomaterials (Basel). 2024 Jan 25;14(3):258. doi: 10.3390/nano14030258.

Abstract

This study explores cutting-edge and sustainable green methodologies and technologies for the synthesis of functional nanomaterials, with a specific focus on the removal of water contaminants and the application of kinetic adsorption models. Our research adopts a conscientious approach to environmental stewardship by synergistically employing eco-friendly silver nanoparticles, synthesized using extract as a biogenic reducing agent, in conjunction with Mexican zeolite to enhance contaminant remediation, particularly targeting Cu ions. Structural analysis, utilizing X-ray diffraction (XRD) and high-resolution scanning and transmission electron microscopy (TEM and SEM), yields crucial insights into nanocomposite structure and morphology. Rigorous linear and non-linear kinetic models, encompassing pseudo-first order, pseudo-second order, Freundlich, and Langmuir, are employed to elucidate the kinetics and equilibrium behaviors of adsorption. The results underscore the remarkable efficiency of the Zeolite-Ag composite in Cu ion removal, surpassing traditional materials and achieving an impressive adsorption rate of 98% for Cu. Furthermore, the Zeolite-Ag composite exhibits maximum adsorption times of 480 min. In the computational analysis, an initial mechanism for Cu adsorption on zeolites is identified. The process involves rapid adsorption onto the surface of the Zeolite-Ag NP composite, followed by a gradual diffusion of ions into the cavities within the zeolite structure. Upon reaching equilibrium, a substantial reduction in copper ion concentration in the solution signifies successful removal. This research represents a noteworthy stride in sustainable contaminant removal, aligning with eco-friendly practices and supporting the potential integration of this technology into environmental applications. Consequently, it presents a promising solution for eco-conscious contaminant remediation, emphasizing the utilization of green methodologies and sustainable technologies in the development of functional nanomaterials.

摘要

本研究探索用于合成功能纳米材料的前沿且可持续的绿色方法和技术,特别关注水污染物的去除以及动力学吸附模型的应用。我们的研究通过协同使用以提取物作为生物还原剂合成的环保型银纳米颗粒与墨西哥沸石来增强污染物修复,特别是针对铜离子,从而采取了一种认真负责的环境管理方法。利用X射线衍射(XRD)以及高分辨率扫描和透射电子显微镜(TEM和SEM)进行结构分析,可对纳米复合材料的结构和形态产生关键见解。采用严格的线性和非线性动力学模型,包括伪一级、伪二级、弗伦德利希和朗缪尔模型,来阐明吸附的动力学和平衡行为。结果强调了沸石 - 银复合材料在去除铜离子方面的显著效率,超过了传统材料,对铜的吸附率达到了令人印象深刻的98%。此外,沸石 - 银复合材料的最大吸附时间为480分钟。在计算分析中,确定了铜在沸石上吸附的初始机制。该过程包括快速吸附到沸石 - 银纳米颗粒复合材料的表面,随后离子逐渐扩散到沸石结构内的孔洞中。达到平衡后,溶液中铜离子浓度的大幅降低表明去除成功。这项研究在可持续污染物去除方面迈出了值得注意的一步,符合环保实践,并支持将该技术潜在地整合到环境应用中。因此,它为注重生态的污染物修复提供了一个有前景的解决方案,强调在功能纳米材料的开发中利用绿色方法和可持续技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbb0/10856811/8710be1cee00/nanomaterials-14-00258-g001.jpg

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