Biosorption of Pb(II), Cu(II), and Zn(II) from aqueous solutions using unmodified coconut husk: characterization, adsorption equilibrium, and kinetic studies
Résumé
Introduction Heavy-metal contamination of water and wastewater is a persistent environmental challenge because metallic pollutants are non-biodegradable, bioaccumulate through food chains, and pose serious risks to ecosystem and human health even at low concentrations. Conventional treatment technologies are often limited by high cost, secondary waste generation, and operational complexity, creating demand for low-cost, locally available alternatives. In this study, unmodified coconut husk was evaluated as a low-cost biosorbent for the removal of Pb(II), Cu(II), and Zn(II) from single-metal aqueous solutions. Methods The biosorbent was characterized by Fourier-transform infrared spectroscopy (FTIR) and scanning electron microscopy (SEM). Batch adsorption experiments were conducted to investigate the effects of initial metal concentration (300–1,500 mg/L), adsorbent dose (0.2–1.0 g), solution pH (2.5–6.5), and contact time (5–120 min) on metal removal. Percentage removal increased with rising pH, adsorbent dose, and contact time, while it declined with increasing initial metal concentration. Results Pb(II) consistently exhibited the highest adsorption affinity. Equilibrium data were better described by the Langmuir isotherm (R 2 = 0.9808–0.9987) than by the Freundlich model, indicating predominantly monolayer adsorption; all Langmuir separation factor (R_L) values fell within the favourable range (0 < R_L < 1). Adsorption kinetics conformed to the pseudo-second-order model (R 2 = 0.9694–0.9989) for all three metals, consistent with a chemisorption rate-limiting mechanism. Discussion These results demonstrate that unmodified coconut husk is a promising, environmentally friendly, and economically accessible biosorbent for heavymetal removal and may have practical relevance for low-cost wastewater treatment in resource-limited settings.
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