Por favor, use este identificador para citar o enlazar este ítem: https://hdl.handle.net/10259/10860
Título
Design of Experiments Approach for Efficient Heavy Metals Stabilization Using Metakaolin-Based Geopolymers
Autor
Publicado en
Molecules. 2025, V. 30, n. 15, 3235
Editorial
MDPI
Fecha de publicación
2025-08
ISSN
1420-3049
DOI
10.3390/molecules30153235
Abstract
Alkali-activated aluminosilicate matrices are increasingly studied for their ability to stabilize hazardous metal contaminants via alkali activation at room temperature. In this study, metakaolin-based geopolymers were used to immobilize chromium and nickel salts, with systematic variation of key synthesis parameters, Na/Al molar ratio, metal concentration, anion type, and alkaline solution aging time, which have not been previously studied. A Design of Experiments approach was employed to study the effect of factors on metal leaching behavior and to better understand the underlying immobilization mechanisms. The analysis revealed that higher Na/Al ratios significantly enhance geopolymerization and reduce metal release, as supported by FTIR spectral shifts and decreased shoulder intensity. Notably, aging time had an influence on chromium behavior due to its effect on early silicate network formation, which can hinder the incorporation of chromium species. All tested formulations achieved metal immobilization rates of 98.8% or higher for both chromium and nickel. Overall, this study advances our understanding of geopolymer-based heavy metal immobilization.
Palabras clave
Alkali activation
Metakaolin-based geopolymer
Chromium salts
Nickel salts
Heavy metal stabilization
Multivariate approach
Design of experiments
Principal component analysis
Materia
Metales pesados
Heavy metals
Polímeros
Polymers
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