Production of spherical mesoporous molecularly imprinted polymer particles containing tunable amine decorated nanocavities with CO2 molecule recognition properties

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dc.contributor.author Nabavi, Seyed Ali
dc.contributor.author Vladisavljevic, Goran T.
dc.contributor.author Eguagie, Eseosa
dc.contributor.author Li, Biechen
dc.contributor.author Georgiadou, Stella
dc.contributor.author Manovic, Vasilije
dc.date.accessioned 2016-10-11T11:37:01Z
dc.date.available 2016-10-11T11:37:01Z
dc.date.issued 2016-07-16
dc.identifier.citation Nabavi et al. Production of spherical mesoporous molecularly imprinted polymer particles containing tunable amine decorated nanocavities with CO2 molecule recognition properties, Chemical Engineering Journal, Volume 306, Issue December 2016, pages 214-225. en_UK
dc.identifier.isbn http://dx.doi.org/10.1016/j.cej.2016.07.054
dc.identifier.issn 1385-8947
dc.identifier.uri http://dspace.lib.cranfield.ac.uk/handle/1826/10696
dc.description.abstract Novel spherical molecularly imprinted polymer (MIP) particles containing amide-decorated nanocavities with CO2 recognition properties in the poly[acrylamide-co-(ethyleneglycol dimethacrylate)] mesoporous matrix were synthesized by suspension polymerization using oxalic acid and acetonitrile/toluene as dummy template and porogen mixture, respectively. The particles had a maximum BET surface area, SBET, of 457 m2/g and a total mesopore volume of 0.92 cm3/g created by phase separation between the copolymer and porogenic solvents. The total volume of the micropores (d < 2 nm) was 0.1 cm3/g with two sharp peaks at 0.84 and 0.85 nm that have not been detected in non-imprinted polymer material. The degradation temperature at 5% weight loss was 240–255 °C and the maximum equilibrium CO2 adsorption capacity was 0.56 and 0.62 mmol/g at 40 and 25 °C, respectively, and 0.15 bar CO2 partial pressure. The CO2 adsorption capacity was mainly affected by the density of CO2-philic NH2 groups in the polymer network and the number of nanocavities. Increasing the content of low-polar solvent (toluene) in the organic phase prior to polymerization led to higher CO2 capture capacity due to stronger hydrogen bonds between the template and the monomer during complex formation. Under the same conditions, molecularly imprinted particles showed much higher CO2 capture capacity compared to their non-imprinted counterparts. The volume median diameter (73–211 μm) and density (1.3 g/cm3) of the produced particles were within the range suitable for CO2 capture in fixed and fluidized bed systems. en_UK
dc.language.iso en en_UK
dc.publisher Elsevier en_UK
dc.rights Attribution 4.0 International
dc.rights.uri http://creativecommons.org/licenses/by/4.0/
dc.subject CO2 recognition property en_UK
dc.subject molecularly imprinted polymer adsorbents en_UK
dc.subject amide decorated cavities en_UK
dc.subject post combustion carbon capture en_UK
dc.subject suspension polymerization en_UK
dc.subject dynamic CO2 adsorption isotherms en_UK
dc.title Production of spherical mesoporous molecularly imprinted polymer particles containing tunable amine decorated nanocavities with CO2 molecule recognition properties en_UK
dc.type Article en_UK


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