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Bio-based nanocomposite hydrogels derived from poly (glycerol tartrate) and cellulose: Thermally stable and green adsorbents for efficient adsorption of heavy metals. | LitMetric

AI Article Synopsis

  • Developed eco-friendly polymeric nanocomposite hydrogels using dendritic fibrous nanosilica (DFNS) and apple peel (AP) for effective removal of toxic metal ions like Pb, Co, Ni, and Cu from wastewater.
  • Characterization techniques revealed improved thermal stability and significant adsorption capacities, peaking at 560.2 mg/g for Pb and 473.12 mg/g for Cu at specific pH levels.
  • The hydrogels demonstrated high reusability, retaining 93% of their adsorption capacity after four cycles, confirming their potential as efficient adsorbents in environmental applications.

Article Abstract

The eco-friendly polymeric nanocomposite hydrogels were prepared by incorporating dendritic fibrous nanosilica (DFNS) and apple peel (AP) as reinforcements into the crosslinked polymer produced by cellulose (CL) and poly (glycerol tartrate) (TAGL) via gelation method and used for efficient adsorption of Pb, Co, Ni, and Cu metal ions. DFNS and DFNS/TAGL-CL/AP samples were characterized by FESEM, FTIR, TEM, TGA, and nitrogen adsorption/desorption methods. The results of TGA analysis showed that the thermal stability of the prepared hydrogels improved significantly in the presence of DFNS. Both synthetic and environmental parameters were investigated and the adsorption capacity reached 560.2 (pH = 4) and 473.12 (pH = 5) mg/g for Pb and Cu respectively, using initial ion concentration of 200 mg/L. Also, the maximum adsorption capacity was 340.9, and 350.3 mg/g for Co and Ni, respectively under optimum conditions (pH = 6, initial ion concentration of 100 mg/L). These experiments indicated that the DFNS/TAGL-CL/AP nanocomposite hydrogel has an excellent performance in removal of Pb and can adsorb this toxic metal in only 30 min while the optimum contact time for other metals was 60 min. Pseudo-second-order and Langmuir models were used to define the kinetic and adsorption isotherms, respectively and thermodynamic studies demonstrated that the adsorption was endothermic for Co, Ni and Cu, exothermic for Pb, and spontaneous in nature for all metal ions. Furthermore, the reusability tests indicated that the hydrogels could maintain up to 93% of their initial adsorption capacity for all metal ions after four cycles. Therefore, the prepared nanocomposite hydrogels can be suggested as efficient adsorbents to remove the toxic metals from wastewater.

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Source
http://dx.doi.org/10.1016/j.chemosphere.2023.140956DOI Listing

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