As(V) sorption from aqueous solutions using quaternized algal/polyethyleneimine composite beads

Composite beads (APEI*), obtained by the controlled interaction of algal biomass with PEI, followed by ionotropic gelation and crosslinking processes using CaCl2/glutaraldehyde solution, constitute efficient supports for metal binding. The quaternization of algal/PEI beads (Q-APEI*) significantly in...

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Veröffentlicht in:The Science of the total environment 2020-06, Vol.719, p.137396-137396, Article 137396
Hauptverfasser: Hamza, Mohammed F., Lu, Siming, Salih, Khalid A.M., Mira, Hamed, Dhmees, Abdelghaffar S., Fujita, Toyohisa, Wei, Yuezhou, Vincent, Thierry, Guibal, Eric
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Sprache:eng
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Zusammenfassung:Composite beads (APEI*), obtained by the controlled interaction of algal biomass with PEI, followed by ionotropic gelation and crosslinking processes using CaCl2/glutaraldehyde solution, constitute efficient supports for metal binding. The quaternization of algal/PEI beads (Q-APEI*) significantly increases the sorption properties of the composite beads (APEI*) for As(V). The materials are characterized by SEM/EDX, TGA, BET, elemental analysis, FTIR, XPS, and titration. The sorption of As(V) is studied in function of pH while sorption mechanism is discussed in function of metal speciation and surface characteristics of the sorbent. Optimum sorption occurs at pH close to 7. Fast uptake kinetics, correlated to textural properties are successfully fitted by pseudo-first order rate equation and the Crank equation (for resistance to intraparticle diffusion); equilibrium is reached with 45–60 min. The Langmuir equation finely fits sorption isotherms; maximum sorption capacity reaches 1.34 mmol As g−1. Arsenic can be completely eluted using 0.5 M CaCl2/0.5 M HCl solutions; the sorbent maintains high sorption and desorption efficiencies for a minimum of 5 cycles. The sorbent is tested for the removal of As(V) from mining effluents containing high concentration of iron and traces of zinc. At pH 3, the sorbent shows remarkable selectivity for As(V) over Fe. After controlling the initial pH to 5, a sorbent dosage of 2 g L−1 is sufficient for achieving the complete recovery of As(V) from mining effluent (corresponding to initial concentration of 1.295 mmol As L−1). [Display omitted] •As(V) sorption on algal/PEI beads is strongly improved by bead quaternization.•At pH close to 7, sorption capacity reaches up to 1.34 mmol As g−1 (100 mg As g−1).•Fast uptake kinetics is fitted by the pseudo-first order rate equation.•As(V) is desorbed with acidic CaCl2 solutions (with good sorbent recycling).•The sorbent is highly efficient as a polishing treatment for acid mine drainage.
ISSN:0048-9697
1879-1026
DOI:10.1016/j.scitotenv.2020.137396