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Lindqvist@Nanoporous MOF-Based Catalyst for Effective Desulfurization of Fuels.

Simone FernandesDaniela FloresDaniel SilvaIsabel Santos-VieiraFatima MiranteCarlos M GranadeiroSalete S Balula
Published in: Nanomaterials (Basel, Switzerland) (2022)
An effective and sustainable oxidative desulfurization process for treating a multicomponent model fuel was successfully developed using as a heterogeneous catalyst a composite material containing as an active center the europium Lindqvist [Eu(W 5 O 18 ) 2 ] 9- (abbreviated as EuW 10 ) encapsulated into the nanoporous ZIF-8 (zeolitic imidazolate framework) support. The EuW 10 @ZIF-8 composite was obtained through an impregnation procedure, and its successful preparation was confirmed by various characterization techniques (FT-IR, XRD, SEM/EDS, ICP-OES). The catalytic activity of the composite and the isolated EuW 10 was evaluated in the desulfurization of a multicomponent model fuel containing dibenzothiophene derivatives (DBT, 4-MDBT and 4,6-DMDBT) with a total sulfur concentration of 1500 ppm. Oxidative desulfurization was performed using an ionic liquid as extraction solvent and aqueous hydrogen peroxide as oxidant. The catalytic results showed a remarkable desulfurization performance, with 99.5 and 94.7% sulfur removal in the first 180 min, for the homogeneous active center EuW 10 and the heterogeneous EuW 10 @ZIF-8 catalysts, respectively. Furthermore, the stability of the nanocomposite catalyst was investigated by reusing and recycling processes. A superior retention of catalyst activity in consecutive desulfurization cycles was observed in the recycling studies when compared with the reusing experiments. Nevertheless, the nanostructure of ZIF-8 incorporating the active POM (polyoxometalate) was shown to be highly suitable for guaranteeing the absence of POM leaching, although structural modification was found for ZIF-8 after catalytic use that did not influenced catalytic performance.
Keyphrases
  • ionic liquid
  • metal organic framework
  • hydrogen peroxide
  • room temperature
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  • crystal structure
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  • carbon dioxide
  • electron microscopy