AI Article Synopsis

  • A new adsorbent made from chitosan and acrylic acid, using formaldehyde as a cross-linker, was created in the form of hydrogel beads for removing toxic metal ions (Pb and Cd) from water.
  • The beads exhibited a 3D macro-porous structure with -NH groups that effectively bind to the metal ions, showing improved removal rates as the concentration of metal ions increased.
  • The adsorption process follows the Freundlich model for isotherms and a second-order kinetic model for how the ions are taken up, indicating that the removal is primarily driven by chemical interactions within the porous structure.

Article Abstract

A novel adsorbent was prepared by blending chitosan (CS) and acrylic acid (AA) while using formaldehyde as a cross linker in the form of hydrogel beads. The adsorption properties of these hydrogel beads for the removal of toxic metal ions (Pb and Cd) from aqueous solutions were evaluated. The hydrogel beads have a 3D macro-porous structure whose -NH groups were considered to be the dominant binding specie for Cd and Pb ions. The equilibrium adsorption capacity (q) of beads was significantly affected by the mass ratio of sorbent and sorbate. The percentage removal of Cd and Pb ions was observed to be enhanced with the increase in sorbate concentration. The hydrogel beads maintained good adsorption properties at adsorption-desorption equilibrium. The Langmuir and Freundlich models were used to elaborate the isotherms as well as isotherm constants. Adsorption isothermal data is well explained by the Freundlich model. The data of experimental kinetics is interrelated with the second-order kinetic model, which showed that the chemical sorption phenomenon is the rate limiting step. The results of intraparticle diffusion model described the adsorption process occurred on a porous substance that proved chitosan/Formaldehyde beads to be the favorable adsorbent.

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Source
http://dx.doi.org/10.1016/j.envres.2022.113790DOI Listing

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