This study explores the potential of metakaolin-based geopolymers, activated using sodium hydroxide and sodium silicate, for the solidification and stabilization of heavy metals present in galvanic sludge-a hazardous industrial waste rich in chromium (Cr), nickel (Ni), and iron (Fe). The research investigates factors affecting the cold consolidation of the pastes, such as NaOH molarity (8 or 10 M) and time of preparation of activating solutions (24 h in advance or soon before the fresh paste preparation), the sequence of experimental steps (the sludge added to the fresh paste or to the powder of metakaolin) and amount of waste (10 or 20 per cent by weight over metakaolin). The final products were characterized by X-ray diffraction (XRD), Fourier-transform infrared spectroscopy (FT-IR), and environmental scanning electron microscopy (ESEM). Mechanical performance and durability assessments, including compressive strength and water stability tests, were conducted to evaluate the suitability of the geopolymer for construction applications. Leaching tests according to EU regulation demonstrated promising heavy metal immobilization, highlighting the effectiveness of the geopolymerization process in reducing metal leachability. It was found that the factors affecting immobilization are more evident for Cr than for Ni, whose immobilization percentages are very high. In particular, it was observed that preparing the mixture by adding sludge after metakaolin activation increased Cr immobilization from 83% to 89%. Similarly, preparing the activating solution 24 h before mixing the sludge and geopolymer increased the percentage from 89 to 95.

Factors Affecting Consolidation in Geopolymers for Stabilization of Galvanic Sludge / Genua, F.; Giovini, M.; Santoni, E.; Berrettoni, M.; Lancellotti, I.; Leonelli, C.. - In: MATERIALS. - ISSN 1996-1944. - 18:13(2025), pp. 1-20. [10.3390/ma18133015]

Factors Affecting Consolidation in Geopolymers for Stabilization of Galvanic Sludge

Genua F.
Writing – Original Draft Preparation
;
Giovini M.
Writing – Review & Editing
;
Berrettoni M.
Funding Acquisition
;
Lancellotti I.
;
Leonelli C.
Writing – Review & Editing
2025

Abstract

This study explores the potential of metakaolin-based geopolymers, activated using sodium hydroxide and sodium silicate, for the solidification and stabilization of heavy metals present in galvanic sludge-a hazardous industrial waste rich in chromium (Cr), nickel (Ni), and iron (Fe). The research investigates factors affecting the cold consolidation of the pastes, such as NaOH molarity (8 or 10 M) and time of preparation of activating solutions (24 h in advance or soon before the fresh paste preparation), the sequence of experimental steps (the sludge added to the fresh paste or to the powder of metakaolin) and amount of waste (10 or 20 per cent by weight over metakaolin). The final products were characterized by X-ray diffraction (XRD), Fourier-transform infrared spectroscopy (FT-IR), and environmental scanning electron microscopy (ESEM). Mechanical performance and durability assessments, including compressive strength and water stability tests, were conducted to evaluate the suitability of the geopolymer for construction applications. Leaching tests according to EU regulation demonstrated promising heavy metal immobilization, highlighting the effectiveness of the geopolymerization process in reducing metal leachability. It was found that the factors affecting immobilization are more evident for Cr than for Ni, whose immobilization percentages are very high. In particular, it was observed that preparing the mixture by adding sludge after metakaolin activation increased Cr immobilization from 83% to 89%. Similarly, preparing the activating solution 24 h before mixing the sludge and geopolymer increased the percentage from 89 to 95.
2025
25-giu-2025
no
Inglese
18
13
3015
1
20
https://www.mdpi.com/1996-1944/18/13/3015#:~:text=The research investigates factors affecting,from 83% to 89%
alkali activation; chemical stability; chromium; galvanic sludge; heavy metals; leaching; nickel; stabilization
Goal 12: Responsible consumption and production
This research was funded by PNRR, Next generation UE, Mission 4, Component 2, Investment 1.1, D.D. N. 104 MUR 02/02/2022, PRIN 2022 ACCHA-Advanced Chemical Characterization of Heavy metals and Anions encapsulated in geopolymers with synthetic redox environment, grant number 2022LKEKJ7, CUPE53D23008480006.
open
info:eu-repo/semantics/article
Contributo su RIVISTA::Articolo su rivista
262
Factors Affecting Consolidation in Geopolymers for Stabilization of Galvanic Sludge / Genua, F.; Giovini, M.; Santoni, E.; Berrettoni, M.; Lancellotti, I.; Leonelli, C.. - In: MATERIALS. - ISSN 1996-1944. - 18:13(2025), pp. 1-20. [10.3390/ma18133015]
Genua, F.; Giovini, M.; Santoni, E.; Berrettoni, M.; Lancellotti, I.; Leonelli, C.
6
   Advanced Chemical Characterization of Heavy metals and Anions encapsulated in geopolymers with synthetic redox environment
   PRIN 2022 ACCHA
   MUR
   PNRR, Next generation UE, Mission 4, Component 2, Investment 1.1, D.D. N. 104 MUR 02/02/2022
   grant number 2022LKEKJ7
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1388755
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