Clear Search sequence regions


  • AOAS (1)
  • behavior (1)
  • cassava (1)
  • congo red (8)
  • dyes (4)
  • ecosystem (2)
  • hybrid (1)
  • MPPA (7)
  • polyethyleneimine (1)
  • water pollutants (2)
  • Sizes of these terms reflect their relevance to your search.

    Large quantities of organic dyes are discharged into the environment, causing serious damage to the ecosystem. Therefore, it is urgent to develop inexpensive adsorbents to remove organic dyes. A novel cellulose-based aerogel (MPPA) with 3D porous structure was prepared by using cassava residue (cellulose) as basic construction blocks, doping ferroferric oxide (Fe3O4) for magnetic separation, and applying polyethyleneimine (PEI) as functional material for highly efficient and selective capture of Congo red (CR). MPPA exhibited porous network structure, numerous active capture sites, nontoxicity, high hydrophilicity, and excellent thermal stability. MPPA showed superior adsorption property for CR, with an equilibrium adsorption capacity of 2018.14 mg/g, and still had an adsorption property of 1189.31 mg/g after five recycling procedures. In addition, MPPA has excellent selectivity for CR in four binary dye systems. The adsorption behavior of MPPA on CR was further explored using a multilayer adsorption model, EDR-IDR hybrid model and AOAS model. Electrostatic potential and independent gradient models were used to further verify the possible interaction between MPPA and CR molecules. In conclusion, MPPA is a promising adsorbent in the field of treating anionic dyes. Copyright © 2023. Published by Elsevier B.V.

    Citation

    Wen-Hao Qin, Ming-Xing Li, Yi-Bing Zhang, Wen Li, Ran Jia, Yan-Shu Xiong, Hai-Qin Lu, Si-Yuan Zhang. High capacity and selective adsorption of Congo red by cellulose-based aerogel with mesoporous structure: Adsorption properties and statistical data simulation. International journal of biological macromolecules. 2024 Feb;259(Pt 1):129137

    Expand section icon Mesh Tags

    Expand section icon Substances


    PMID: 38171438

    View Full Text