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Updated: Jan 19, 2026

Two-way Valorization of Blast Furnace Slag: Synthesis of Precipitated Calcium Carbonate and Zeolitic Heavy Metal Adsorbent
Published on: February 21, 2017
Selective adsorption and mechanistic insights into divalent cadmium, copper, and lead recovery using silica-magnetite
Buhani1, Ni Luh Gede Ratna Juliasih1, Indah Wahyu Purnamasari1
1Faculty of Mathematics and Natural Sciences, University of Lampung, Bandar Lampung, Indonesia.
Abstract:
This study presents the synthesis and evaluation of a novel bio-based nanocomposite, Nitzs-Si@nMs, derived from Nitzschia sp. diatom biomass functionalized with a silica matrix and magnetite (Fe3O4) nanoparticles. The composite was fabricated through a facile room-temperature method and comprehensively characterized using FTIR, XRD, SEM-EDX, XRF, and particle size analysis. Nitzs-Si@nMs demonstrated outstanding adsorption performance for Cd(II), Cu(II), and Pb(II) ions in single, binary, and multicomponent systems. Under optimal conditions (pH 5.0, 120 min contact time, and 300 mg L-1 initial concentration), removal efficiencies exceeded 99%. Adsorption followed pseudo-second-order kinetics and conformed to the Langmuir isotherm, indicating monolayer chemisorption. Maximum adsorption capacities were 1.0204 mmol g-1 for Cu(II), 0.7299 mmol g-1 for Cd(II), and 0.5587 mmol g-1 for Pb(II). Competitive studies revealed a strong selectivity for Cu(II), attributed to its smaller hydrated radius and high affinity for Fe-O coordination sites introduced by magnetite. The composite exhibited robust chemical stability in acidic environments (84% Si retention after 96 h at pH 1.35) and retained over 80% of its adsorption capacity across four regeneration cycles using 0.1 M HCl. Compared to conventional bio-adsorbents, Nitzs-Si@nMs achieved superior adsorption capacities and operational advantages, including facile magnetic separation and reusability.
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