The removal of pollutants from wastewater is of primary importance for the environment and human health. The materials that we propose for the first time for this application are composite membranes obtained using polyvinyl alcohol and lamellar solids as fillers. First, layered double hydroxides (LDHs) MgAlNO3 and ZnAlNO3 and sodium exchanged zirconium phosphate (ZrP-Na) were synthesized and characterized, and their water decontamination efficacy was studied. Then composite membranes were prepared by incorporating one or both inorganic components (MgAlNO3 and ZrP-Na), with a total inorganic filler content of 40 and 60 wt%. The efficacy and selectivity of the composite membranes were investigated by batch experimental analysis. The polyvinyl alcohol/sodium exchanged alpha-zirconium phosphate/layered double hydroxide membranes were tested for the removal of Pb2+, Cr3+, Ni2+ and diclofenac sodium (DS) from aqueous solution. The best overall removal efficiencies of 99.6, 86.1, 56.7 and 44.0% for Pb2+, Cr3+, Ni2+ and DS, respectively, were observed for the PVA membranes containing 20 wt% ZrP-Na and 20 wt% MgAlNO3. The use of composite membranes offers the possibility of combining the high exchange capacity of the inorganic materials presented in this work and the flexibility of the polymer in such a way as to be used in flow systems in the future.Synthetic lamellar solids possess great potential in the water decontamination field. Composite membranes of polyvinyl alcohol and lamellar solids were prepared and tested, which demonstrated high efficiency in removing contaminants from water.

Bastianini, M., Sisani, M., Naryyev, E., Petracci, A., Di Guida, I., Narducci, R. (2023). Composite membranes based on polyvinyl alcohol and lamellar solids for water decontamination. NEW JOURNAL OF CHEMISTRY, 48(5), 2128-2139 [10.1039/d3nj04942f].

Composite membranes based on polyvinyl alcohol and lamellar solids for water decontamination

Naryyev E.;Narducci R.
2023-01-01

Abstract

The removal of pollutants from wastewater is of primary importance for the environment and human health. The materials that we propose for the first time for this application are composite membranes obtained using polyvinyl alcohol and lamellar solids as fillers. First, layered double hydroxides (LDHs) MgAlNO3 and ZnAlNO3 and sodium exchanged zirconium phosphate (ZrP-Na) were synthesized and characterized, and their water decontamination efficacy was studied. Then composite membranes were prepared by incorporating one or both inorganic components (MgAlNO3 and ZrP-Na), with a total inorganic filler content of 40 and 60 wt%. The efficacy and selectivity of the composite membranes were investigated by batch experimental analysis. The polyvinyl alcohol/sodium exchanged alpha-zirconium phosphate/layered double hydroxide membranes were tested for the removal of Pb2+, Cr3+, Ni2+ and diclofenac sodium (DS) from aqueous solution. The best overall removal efficiencies of 99.6, 86.1, 56.7 and 44.0% for Pb2+, Cr3+, Ni2+ and DS, respectively, were observed for the PVA membranes containing 20 wt% ZrP-Na and 20 wt% MgAlNO3. The use of composite membranes offers the possibility of combining the high exchange capacity of the inorganic materials presented in this work and the flexibility of the polymer in such a way as to be used in flow systems in the future.Synthetic lamellar solids possess great potential in the water decontamination field. Composite membranes of polyvinyl alcohol and lamellar solids were prepared and tested, which demonstrated high efficiency in removing contaminants from water.
2023
In corso di stampa
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/07
Settore CHIM/03
English
Bastianini, M., Sisani, M., Naryyev, E., Petracci, A., Di Guida, I., Narducci, R. (2023). Composite membranes based on polyvinyl alcohol and lamellar solids for water decontamination. NEW JOURNAL OF CHEMISTRY, 48(5), 2128-2139 [10.1039/d3nj04942f].
Bastianini, M; Sisani, M; Naryyev, E; Petracci, A; Di Guida, I; Narducci, R
Articolo su rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/351042
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