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Rational Design of an Ion-Imprinted Polymer for Aqueous Methylmercury Sorption.


ABSTRACT: Methylmercury (MeHg+) is a mercury species that is very toxic for humans, and its monitoring and sorption from environmental samples of water are a public health concern. In this work, a combination of theory and experiment was used to rationally synthesize an ion-imprinted polymer (IIP) with the aim of the extraction of MeHg+ from samples of water. Interactions among MeHg+ and possible reaction components in the pre-polymerization stage were studied by computational simulation using density functional theory. Accordingly, 2-mercaptobenzimidazole (MBI) and 2-mercaptobenzothiazole (MBT), acrylic acid (AA) and ethanol were predicted as excellent sulfhydryl ligands, a functional monomer and porogenic solvent, respectively. Characterization studies by scanning electron microscopy (SEM) and Brunauer-Emmett-Teller (BET) revealed the obtention of porous materials with specific surface areas of 11 m2 g-1 (IIP-MBI-AA) and 5.3 m2 g-1 (IIP-MBT-AA). Under optimized conditions, the maximum adsorption capacities were 157 µg g-1 (for IIP-MBI-AA) and 457 µg g-1 (for IIP-MBT-AA). The IIP-MBT-AA was selected for further experiments and application, and the selectivity coefficients were MeHg+/Hg2+ (0.86), MeHg+/Cd2+ (260), MeHg+/Pb2+ (288) and MeHg+/Zn2+ (1510), highlighting the material's high affinity for MeHg+. The IIP was successfully applied to the sorption of MeHg+ in river and tap water samples at environmentally relevant concentrations.

SUBMITTER: Mesa RLM 

PROVIDER: S-EPMC7766906 | biostudies-literature | 2020 Dec

REPOSITORIES: biostudies-literature

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Rational Design of an Ion-Imprinted Polymer for Aqueous Methylmercury Sorption.

Mesa Ruddy L M RLM   Villa Javier E L JEL   Khan Sabir S   Peixoto Rafaella R Alves RRA   Morgano Marcelo A MA   Gonçalves Luís Moreira LM   Sotomayor Maria D P T MDPT   Picasso Gino G  

Nanomaterials (Basel, Switzerland) 20201217 12


Methylmercury (MeHg<sup>+</sup>) is a mercury species that is very toxic for humans, and its monitoring and sorption from environmental samples of water are a public health concern. In this work, a combination of theory and experiment was used to rationally synthesize an ion-imprinted polymer (IIP) with the aim of the extraction of MeHg<sup>+</sup> from samples of water. Interactions among MeHg<sup>+</sup> and possible reaction components in the pre-polymerization stage were studied by computati  ...[more]

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