Skip to content
Open access

Preparation of chalcone modified polyHIPE for removal of aluminium ions from water

Aug 2026 · Royal Society Open Science · 0 citations · 40 references

Abstract

Aluminium contamination in aquatic environments is an increasing concern because elevated Al³⁺ levels in water resources may pose environmental and human health risks. Therefore, this study addresses the need for cost-effective, chemically tunable and efficient adsorbents for removing aluminium ions from aqueous media as part of sustainable water treatment strategies. In this study, a chalcone-functionalized polymeric adsorbent (Ch-polyHIPE) was developed via the high internal phase emulsion method for the efficient removal of Al³⁺ ions from aqueous solutions. The material, obtained through a multi-step functionalization process involving chlorosulphonation, sulphonamidation and Claisen–Schmidt condensation, was comprehensively characterized using scanning electron microscopy-EDX, FTIR, X-ray Photoelectron Spectrometer and Brunauer–Emmett–Teller analyses. The adsorption performance was systematically evaluated with respect to key parameters, including adsorbent dosage, pH and initial Al³⁺ concentration. The maximum adsorption capacity was achieved at pH 4.0, reaching 56.8 mg g⁻¹. The equilibrium data were best described by the Langmuir isotherm model, indicating monolayer adsorption on a relatively homogeneous surface. Kinetic studies further demonstrated that the adsorption process follows a pseudo-second-order model, suggesting that chemisorption plays a dominant role. Additionally, theoretical calculations supported the strong affinity of chalcone functional groups toward Al³⁺ ions through complex formation, in good agreement with experimental observations. The findings indicate that Ch-polyHIPE materials have the potential to serve as an effective platform for aluminium removal in water treatment applications.

Read PDF

Similar papers

Open access Sep 2026

Cadmium, arsenic, and molybdenum removal from water using a tantalum MOF

Access to clean water is increasingly threatened by rapid industrialization, population growth, and the discharge of heavy metals into aquatic systems, posing serious risks to human health and ecological balance. The development of advanced materials with high adsorption efficiency and multifunctionality is therefore e...

Vahidreza Amiresmaeili, S. M. Mousavi, G. Sargazi et al. · 0 citations
Sep 2026

High-Efficiency Removal of Pb(II) Ions in the Aqueous Phase via a Functionalized MOF

The contamination of water resources by toxic heavy metal ions, particularly lead (Pb(II)), poses serious threats to human health, driving considerable interest in developing innovative chelating adsorbents for effective decontamination. In this study, we designed a novel pillar-layered cadmium-based metal–organic fr...

Nafiseh Jalilian, Farnoosh Zarekarizi, Ali Morsali · 0 citations
Open access Sep 2026

Sustainable synthesis of PAR-modified chitosan for selective lead(II) separation from copper(II) in water

Elevated concentrations of lead and copper in the natural environment, primarily due to polymetallic ore processing, underscore the urgent need for advanced remediation strategies. The chemical similarity between these metals complicates their selective separation during water treatment. Chitosan-based adsorbents, whic...

Piotr Kotlarczyk, Łukasz Wujcicki, Tomasz Mańdok et al. · 0 citations
Open access Aug 2026

An Assessment of Biopolymer-Based Metal Oxide Nanoparticles for the Removal of Heavy Metals from Water

Water contamination by toxic heavy metals continues to be a major environmental and public health issue, requiring affordable and sustainable remediation solutions. This study developed a nanocomposite from banana peel, incorporating Fe3O4 and TiO2 nanoparticles through a combined co-precipitation and hydrothermal meth...

Koffi Sossou, A. Mayabi, Zeraebruk Negusse Kahsay et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.