Conversion of Natural Clay into Na-A (LTA) Zeolite Adsorbent for Efficient Heavy Metals Adsorption from Aqueous Solution: Kinetic and Isotherm Studies
Rattachement africain : Algérie, ae, it, sa. Niveau de preuve : code pays fourni par la source.
Le résumé fourni par la source
In this work, zeolite LTA (Linde Type A) was synthesised from natural clay as a novel adsorbent for copper and lead ions removal from water effluents. The applied process allowed the reuse of kaolin, as natural clay, for the production of zeolite LTA through a stepwise process, which involved the formation of metakaolin. The results of characterisation showed the formation of crystalline cubic crystals of zeolite with a mean dimension of 2–3 microns, indicating the successful nucleation and development of the LTA zeolite phase. Batch adsorption studies were carried out to study the removal ability of zeolite LTA by testing Cu2+ and Pb2+ ions. Effects of contact time, pH, and adsorbent dosage were investigated. At pH > 5, the removal efficiency for both metals exceeded 95%. As the zeolite dosage increases from 2 to 10 g/L, the removal effectiveness for both metals markedly enhances (>95% at 10 g/L for lead ions and >90% at 10 g/L for copper ions). The adsorbent showed a higher adsorption capacity in removing lead compared to copper (Qm = 81.5 mg/g for Pb2+ and 67.5 mg/g for Cu2+). The adsorption process was well described by the pseudo-second-order kinetic model, while the Langmuir isotherm adequately depicted the equilibrium behavior. Notably, the kinetics revealed distinct contributions from chemisorption and physisorption, with the AOAS model effectively quantifying their respective roles in metal ion removal. The findings revealed that prepared zeolite LTA acts as an efficient adsorbent to remove heavy metals.
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Le contrôle bibliographique ouvert
DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.
- Titre Crossref
- Conversion of Natural Clay into Na-A (LTA) Zeolite Adsorbent for Efficient Heavy Metals Adsorption from Aqueous Solution: Kinetic and Isotherm Studies
- Date Crossref
- 25/09/2025
- Éditeur
- MDPI AG
- Type
- journal-article
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