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Tailoring of Mesoporous Silica-Based Materials for Enhanced Water Pollutants Removal.

Daniela FloresC Marisa R AlmeidaCarlos R GomesSalete S BalulaCarlos M Granadeiro
Published in: Molecules (Basel, Switzerland) (2023)
The adsorptive performance of mesoporous silica-based materials towards inorganic (metal ions) and organic (dyes) water pollutants was investigated. Mesoporous silica materials with different particle size, surface area and pore volume were prepared and tailored with different functional groups. These materials were then characterised by solid-state techniques, namely vibrational spectroscopy, elemental analysis, scanning electron microscopy and nitrogen adsorption-desorption isotherms, allowing the successful preparation and structural modifications of the materials to be confirmed. The influence of the physicochemical properties of the adsorbents towards the removal of metal ions (Ni 2+ , Cu 2+ and Fe 3+ ) and organic dyes (methylene blue and methyl green) from aqueous solutions was also investigated. The results reveal that the exceptionally high surface area and suitable ζ-potential of the nanosized mesoporous silica nanoparticles (MSNPs) seem to favour the adsorptive capacity of the material for both types of water pollutants. Kinetic studies were performed for the adsorption of organic dyes by MSNPs and large-pore mesoporous silica (LPMS), suggesting that the process follows a pseudo-second-order model. The recyclability along consecutive adsorption cycles and the stability of the adsorbents after use were also investigated, showing that the material can be reused. Current results show the potentialities of novel silica-based material as a suitable adsorbent to remove pollutants from aquatic matrices with an applicability to reduce water pollution.
Keyphrases
  • aqueous solution
  • heavy metals
  • electron microscopy
  • solid state
  • risk assessment
  • water soluble
  • atomic force microscopy
  • high resolution
  • gene expression
  • particulate matter
  • molecular dynamics
  • genome wide
  • climate change