Effect of Aluminium Powder on Kaolin-Based Geopolymer Characteristic and Removal of Cu2

This current work focuses on the synthesis of geopolymer-based adsorbent which uses kaolin as a source material, mixed with alkali solution consisting of 10 M NaOH and Na2SiO3 as well as aluminium powder as a foaming agent. The experimental range for the aluminium powder was between 0.6, 0.8, 1.0 an...

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Published inMaterials Vol. 14; no. 4; p. 814
Main Authors Ariffin, Nurliyana, Abdullah, Mohd Mustafa Al Bakri, Postawa, Przemysław, Zamree Abd Rahim, Shayfull, Mohd Arif Zainol, Mohd Remy Rozainy, Putra Jaya, Ramadhansyah, Śliwa, Agata, Omar, Mohd Firdaus, Wysłocki, Jerzy J., Błoch, Katarzyna, Nabiałek, Marcin
Format Journal Article
LanguageEnglish
Published MDPI 08.02.2021
MDPI AG
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Summary:This current work focuses on the synthesis of geopolymer-based adsorbent which uses kaolin as a source material, mixed with alkali solution consisting of 10 M NaOH and Na2SiO3 as well as aluminium powder as a foaming agent. The experimental range for the aluminium powder was between 0.6, 0.8, 1.0 and 1.2wt%. The structure, properties and characterization of the geopolymer were examined using X-Ray Diffraction (XRD), Infrared Spectroscopy (FTIR) and Scanning Electron Microscopy (SEM). Adsorption capacity and porosity were analysed based on various percentages of aluminium powder added. The results indicate that the use of aluminium powder exhibited a better pore size distribution and higher porosity, suggesting a better heavy metal removal. The maximum adsorption capacity of Cu2+ approached approximately 98%. The findings indicate that 0.8% aluminium powder was the optimal aluminium powder content for geopolymer adsorbent. The removal efficiency was affected by pH, adsorbent dosage and contact time. The optimum removal capacity of Cu2+ was obtained at pH 6 with 1.5 g geopolymer adsorbent and 4 h contact time. Therefore, it can be concluded that the increase in porosity increases the adsorption of Cu2+.
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ISSN:1996-1944
1996-1944
DOI:10.3390/ma14040814