Highly efficient removal of Pb2+ from aqueous solution using polyaniline-cobalt composite nanorods: Kinetics, isotherm and mechanistic investigation.

Chemosphere Pub Date : 2025-02-01 Epub Date: 2024-12-17 DOI:10.1016/j.chemosphere.2024.143929
Madhumita Bhaumik, Arjun Maity, H G Brink
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Abstract

Nanosized cobalt (Co) particles exhibit unique chemical, magnetic, electronic, and catalytic properties. Like nanoscale metallic iron, nanostructured Co and its composite nanostructures also show significant potential for the removal of toxic metal cations from water and wastewater. To explore this potential, composite nanorods (CNRs) of nanosized Co immobilized polyaniline (PANI) nanorods (NRs) matrix (PANI-Co CNRs) were synthesized and effectively applied for the treatment of lead ions (Pb2⁺), serving as a model for heavy metal pollutants in water bodies. Physico-chemical characterization of PANI-Co CNRs revealed that weak ferromagnetic Co nanoparticles (NPs) were effectively deposited onto the surface of the PANI NRs. The enhanced surface properties and superior reactivity of PANI-Co CNRs resulted in greater Pb2+ removal efficiency compared to their individual components. The adsorption kinetics were notably rapid, with the time required to reach equilibrium varying between 60 and 150 min for initial concentrations ranging from 50 to 150 mg/L, all at a pH of 5.0. The isotherm data revealed an impressive Pb2+ adsorption capacity of 1130 mg/g at 25 °C, as determined using the non-linear Langmuir model. Exothermic and spontaneous Pb2+ removal process was deduced from the thermodynamic investigations. Among co-contaminating metal ions, only Cu2+ ions significantly affected the Pb2+ removal performance of the PANI-Co CNRs, implying its possible applications in decontaminating industrial effluent laden with various metal ions. Mechanistic investigation revealed that the treatment process primarily involves the adsorption and precipitation of Pb2+ onto the surface of PANI-Co CNRs, followed by its subsequent reduction to form metallic Pb (Pb0).

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聚苯胺-钴复合纳米棒高效去除水溶液中的Pb2+:动力学、等温线和机理研究。
纳米级钴(Co)颗粒具有独特的化学、磁性、电子和催化性能。与纳米级金属铁一样,纳米结构Co及其复合纳米结构在去除水和废水中的有毒金属阳离子方面也显示出巨大的潜力。为了探索这一潜力,合成了纳米Co固定化聚苯胺(PANI)纳米棒(NRs)基质(PANI-Co CNRs)复合纳米棒(CNRs),并将其有效应用于铅离子(Pb2 +)的处理,作为水体中重金属污染物的模型。对聚苯胺-钴纳米管的物理化学表征表明,弱铁磁性Co纳米颗粒(NPs)有效地沉积在聚苯胺-钴纳米管表面。PANI-Co CNRs增强的表面性能和优异的反应性使得Pb2 +的去除效率高于其单个组分。吸附动力学非常快,在pH为5.0的初始浓度范围为50至150 mg/L时,达到平衡所需的时间在60至150分钟之间。等温线数据显示,在25°C时,Pb2+的吸附量为1130 mg/g,使用非线性Langmuir模型确定。通过热力学研究,推导出了放热自发去除Pb2+的过程。在共污染的金属离子中,只有Cu2+离子对聚苯胺-co cnr的Pb2+去除性能有显著影响,表明其在多种金属离子污染工业废水中的应用前景。机理研究表明,处理过程主要是Pb2+在PANI-Co cnr表面的吸附和沉淀,随后其还原形成金属Pb (Pb0)。
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