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Polyvinyl alcohol-montmorillonite composites for water purification: Analysis of clay mineral cation exchange and composite particle synthesis.
Brown, Karlena; Mendoza, Mary; Tinsley, Tamanika; Bee-DiGregorio, Madeleine Y; Bible, Michael; Brooks, Jerin L; Colorado, Melvin; Esenther, Jacob; Farag, Andrew; Gill, Rachel; Kalivas, Eleni N; Lara, Raquel; Lutz, Alex; Nazaire, Jasmine; Rasines Mazo, Alicia; Rodriguez, Rebeca S; Schwabacher, James C; Zestos, Alexander G; Hartings, Matthew R; Fox, Douglas M.
Afiliação
  • Brown K; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Mendoza M; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Tinsley T; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Bee-DiGregorio MY; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Bible M; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Brooks JL; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Colorado M; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Esenther J; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Farag A; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Gill R; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Kalivas EN; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Lara R; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Lutz A; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Nazaire J; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Rasines Mazo A; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Rodriguez RS; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Schwabacher JC; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Zestos AG; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Hartings MR; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
  • Fox DM; American University, Department of Chemistry, 4400 Massachusetts Ave, NW, Washington, DC 20016, United States.
Polyhedron ; 2052021 Sep 01.
Article em En | MEDLINE | ID: mdl-34305255
ABSTRACT
Municipal and residential water purification rely heavily on activated carbon (AC), but regeneration of AC is costly and cannot be performed at the point-of-use. Clay minerals (CMs) comprise a class of naturally abundant materials with known capacities for analyte adsorbance. However, the gel-forming properties of CMs in aqueous suspension pose problems for these materials being used in water-purification. In this study, we have taken three main steps to optimize the use of CMs in these applications. First, we produced several variants of montmorillonite CMs to evaluate the effect of interstitial cation hydrophobicity on the ability of the CM to uptake chargecarrying organic pollutants. These variants include CMs with the following cations sodium, hexyl(triphenyl) phosphonium, hexyadecyl(triphenyl)phosphonium, and hexyl(tributyl)phosphonium. Second, we synthesized polymer-clay mineral composite films composed of polyvinyl alcohol (PVA), crosslinked in the presence of a CM variant. These films were evaluated for their ability to uptake malachite green (MG). Finally, we developed a one-pot synthetic method for the generation of polymer-clay particles for use in a continuous column process. We synthesized polymer-clay mineral particles using the highest performing CM (based on the film experiments) and evaluated the equilibrium capacity and kinetics of MG uptake from solution.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Polyhedron Ano de publicação: 2021 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Polyhedron Ano de publicação: 2021 Tipo de documento: Article País de afiliação: Estados Unidos