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Updated: Apr 22, 2026

Synthesis of Bimetallic Pt/Sn-based Nanoparticles in Ionic Liquids
Published on: August 23, 2018
Rapid and highly selective surfactant-free lead(II) ion-imprinted nanoparticles for preconcentration with negligible
Shahin Khatiri Nejad Fard1, Abbas Besharati-Seidani1
1Faculty of Chemistry and Chemical Engineering, Malek Ashtar University of Technology, Tehran, Iran.
Background:
Lead pollution is a critical environmental problem and has significant adverse health effects. Lead continues to enter the environment from industrial processes, despite regulation. Traditional techniques for detecting and removing Pb2+, especially at trace levels, are generally ineffective and non-selective. Ion-imprinted polymers (IIPs) for Pb2+ detection and removal are promising new materials, as they are selective, adsorptive, and reusable. In this work, a novel Pb2+-imprinted polymer nanoparticle, was synthesized using quinizarin-based ion-imprinting chemistry and was introduced for effective Pb2+ detection and removal.
Results:
The IIP nanoparticles were prepared by complexing quinizarin with Pb2+ in dimethylformamide, followed by polymerization with ethylene glycol dimethacrylate. Characterization using ICP-AES, infrared spectroscopy, SEM, and elemental analysis indicated successful polymerization and the formation of Pb2+-selective cavities. The uptake of Pb2+ was maximized at pH 5.0, showing a rapid adsorption rate (within 5-30 min) and a maximum capacity of 146.9 μmol g-1, corresponding to a preconcentration factor of 17.8. Competitive sorption experiments demonstrated high selectivity for Pb2+. Desorption using 0.1 M hydrochloric acid yielded 98.5% recovery of the ion. The polymer exhibited high reusability over six cycles with a relative standard deviation of 1.9% and a detection limit (3.3σ) of 2.6 ng mL-1.
Significance:
The synthesized Pb2+-imprinted polymer offers a highly efficient, selective, and reusable approach for Pb2+ removal and detection in complex water systems.Its rapid sorption/desorption kinetics, high reusability, and strong selectivity present a highly applicable technique for environmental monitoring and water purification, providing a sustainable method for treating lead contamination down to trace levels.
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