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新型碱基复合材料对重金属去除和病原体灭活的协同作用研究。

Study of synergistic effects induced by novel base composites on heavy metals removal and pathogen inactivation.

机构信息

Department of Environmental Sciences, Fatima Jinnah Women University, The Mall, Rawalpindi, 46000, Pakistan.

Department of Environmental Sciences, Fatima Jinnah Women University, The Mall, Rawalpindi, 46000, Pakistan.

出版信息

Chemosphere. 2023 Nov;340:139718. doi: 10.1016/j.chemosphere.2023.139718. Epub 2023 Aug 9.

Abstract

The green-collar strategies for nanomaterial synthesis with novel structural competencies have received significant attention in nanotechnology owing to their potential benefits. The utilization of silica nanoparticles for wastewater treatment through heavy metal ions remediation is the focal point of the present study. With this intent, silica was extracted from bagasse ash by the sol-gel method and modified using chitosan. Chemical and physical characteristics of silica(S), silica/Chitosan (SCs), were reckoned through X-ray Powder Diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), and Scanning Electron Microscopy (SEM) and the efficiency of synthesized biomaterials for removing heavy metal ions. Cadmium and Lead from wastewater was evaluated by conducting closed batch experiments. Isotherm and kinetics models were applied to understand the adsorption mechanism. Results of heavy metal ions removal showed that the S possesses the highest removal efficiency of 88% for cadmium. Equilibrium was established within 56 min following a Langmuir isotherm model and pseudo-second-order reaction. The synthesized biomaterials were also tested against the fungal (Aspergillus Niger) and bacterial strains (Escherichia coli and Staphylococcus aureus) to determine their antimicrobial properties Maximum inhibition of 26 mm was shown by SCs for E.coli. Synthesized samples were not so effective for A.niger. The high adsorption potential of silica nanoparticles reveals their potential to treat wastewater containing inorganic pollutants like calcium and lead released from the sugar industry firsthand, thereby building a circular economy by controlling the pollution from source to sink. The synthesized silica nanoparticles and silica/chitosan biomaterials demonstrated high adsorption potential for heavy metal ions, making them promising candidates for integration into Algal Membrane Bioreactors to enhance wastewater treatment efficiency and remove toxic pollutants. Their multifunctional properties, including antimicrobial activity, also offer potential for improving microbial control within AMBRs, ensuring a more effective and sustainable wastewater treatment process.

摘要

利用具有新型结构能力的纳米材料进行绿色合成的策略,由于其潜在的优势,在纳米技术中受到了广泛关注。本研究的重点是利用硅纳米粒子通过重金属离子修复来处理废水。为此,采用溶胶-凝胶法从甘蔗渣灰中提取硅,并采用壳聚糖对其进行改性。通过 X 射线粉末衍射(XRD)、傅里叶变换红外光谱(FTIR)和扫描电子显微镜(SEM)来计算硅(S)、硅/壳聚糖(SCs)的化学和物理特性,并评估合成生物材料对去除废水中重金属离子的效率。通过进行封闭批量实验来评估合成生物材料对废水中镉和铅的去除效率。应用等温线和动力学模型来理解吸附机制。重金属离子去除的结果表明,S 对镉的去除效率最高,达到 88%。遵循 Langmuir 等温模型和伪二阶反应,在 56 分钟内达到平衡。还对合成的生物材料进行了抗真菌(黑曲霉)和细菌(大肠杆菌和金黄色葡萄球菌)的测试,以确定它们的抗菌性能。SCs 对大肠杆菌的最大抑制率为 26mm。合成样品对 A.niger 的抑制效果不明显。硅纳米粒子的高吸附潜力表明,它们具有直接处理废水中无机污染物(如糖工业中释放的钙和铅)的潜力,从而通过从源头到汇的控制来构建循环经济,从而控制污染。合成的硅纳米粒子和硅/壳聚糖生物材料对重金属离子表现出高吸附潜力,有望整合到藻类膜生物反应器中,以提高废水处理效率并去除有毒污染物。它们的多功能特性,包括抗菌活性,也为改善 AMBR 中的微生物控制提供了潜力,确保了更有效和可持续的废水处理过程。

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