Rapid adsorptive removal of Pb2+ ions from aqueous systems using a magnetic graphene oxide calcium alginate composite: optimisation, isotherms, and kinetics†

IF 3.5 Q3 ENGINEERING, ENVIRONMENTAL
Sadit Bihongo Malitha, Dewan Md. Mahmudunnabi, Shreyoshi Mazumder, Khandker Saadat Hossain, Mohammad Nurnabi and Md. Zahangir Alam
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Abstract

Water consumption from polluted sources is a significant cause of human exposure to lead compounds, posing potential risks to humans. This study investigated the synthesis and application of a magnetic graphene oxide calcium alginate composite (MGO@CA) for rapid removal of lead (Pb2+) ions from aqueous systems, demonstrating its effectiveness through various adsorption studies and characterisation techniques. We utilised XRD, FTIR, VSM, and SEM to confirm the structural and magnetic properties of the MGO@CA composite, while BET and AFM analyses were performed to assess its surface area and roughness, which are essential for evaluating its adsorption capacity. Characterization results indicated the formation of a composite with functional groups of both graphene oxide and alginate and a rough surface, high surface area, and magnetic properties. The adsorption process was optimised by studying the effect of varying solution pH, adsorbent dosage, contact time, and initial lead concentration. The maximum adsorption capacity for Pb2+ ions was determined to be 270.27 mg g−1, as revealed using the Langmuir isotherm model, indicating the high efficiency of the composite in removing lead from water. Different adsorption isotherms and reaction kinetic models were studied for the adsorption process. The obtained adsorption data fit well with both the Langmuir and Freundlich adsorption isotherms, indicating the heterogeneous surface of the composite containing sites with different affinities for Pb2+. The adsorption process followed pseudo-second-order reaction kinetics. Furthermore, the adsorbent is regenerable and reusable, maintaining 82.28% of its initial adsorption capacity after 5 cycles. Thus, the MGO@CA adsorbent is remarkably efficient, ecologically sound, readily separable, and thus optimal for rapid and effective elimination of heavy metals from water.

Abstract Image

使用磁性氧化石墨烯海藻酸钙复合材料快速吸附去除水中Pb2+离子:优化,等温线和动力学
饮用受污染水源的水是人类接触铅化合物的一个重要原因,对人类构成潜在风险。本研究研究了磁性氧化石墨烯海藻酸钙复合材料的合成和应用(MGO@CA),用于快速去除水体系中的铅(Pb2+)离子,并通过各种吸附研究和表征技术证明了其有效性。我们使用XRD, FTIR, VSM和SEM来确认MGO@CA复合材料的结构和磁性能,同时使用BET和AFM分析来评估其表面积和粗糙度,这是评估其吸附能力所必需的。表征结果表明,该复合材料具有氧化石墨烯和海藻酸盐的官能团,具有粗糙的表面、高表面积和磁性能。通过考察溶液pH、吸附剂用量、接触时间和初始铅浓度对吸附过程的影响,对吸附过程进行了优化。Langmuir等温线模型显示,复合材料对Pb2+离子的最大吸附量为270.27 mg g−1,表明复合材料对水中铅的去除效率很高。研究了不同的吸附等温线和反应动力学模型。所得吸附数据与Langmuir和Freundlich吸附等温线吻合较好,表明复合材料表面含有对Pb2+具有不同亲和力的位点。吸附过程符合准二级反应动力学。此外,吸附剂具有可再生和可重复使用的特点,经过5次循环后,吸附剂的吸附容量仍保持在初始吸附容量的82.28%。因此,MGO@CA吸附剂非常有效,生态无害,易于分离,因此是快速有效地消除水中重金属的最佳选择。
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CiteScore
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