Catalysts · 2019 · 49 citations · 35 references
EngineeringChemistryCatalyst ActivationChemical EngineeringPhotocatalysisHcl OxidationRu-ti OxideMaterials ScienceInorganic ChemistryCatalytic ApplicationCatalytic MaterialCatalysisHydrogenRu-ti Rutile OxideCatalytic SynthesisElectrochemistryCe AdditiveSingle-atom CatalystCatalyst Preparation
Several Ru-Ti oxide-based catalysts were investigated for the catalytic oxidation of HCl to Cl2 in this work. The active component RuO2 was loaded on different titanium-containing supports by a facile wetness impregnation method. The Ru-Ti oxide based catalysts were characterized by XRD, N2 sorption, SEM, TEM, H2-TPR, XPS, and Raman, which is correlated with the catalytic tests. Rutile TiO2 was confirmed as the optimal support even though it has a low specific surface area. In addition to the interfacial epitaxial lattice matching and epitaxy, the extraordinary performance of Ru-Ti rutile oxide could also be attributed to the favorable oxygen species on Ru sites and specific active phase-support interactions. On the other hand, the influence of additive Ce on the RuO2/TiO2-rutile was studied. The incorporation of Ce by varied methods resulted in further oxidation of RuO2 into RuO2δ+ and a modification of the support structure. The amount of favorable oxygen species on the surface was decreased. As a result, the Deacon activity was lowered. It was demonstrated that the surface oxygen species and specific interactions of the Ru-Ti rutile oxide were critical to HCl oxidation.
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Raman spectra of titanium dioxide
U. Balachandran, N.G. Eror · Journal of Solid State Chemistry · 1982 · 956 citations
Gargi Dutta, Umesh V. Waghmare, Tinku Baidya et al. · Chemistry of Materials · 2006 · 192 citations
Materials Science, Inorganic Chemistry, Electrical Engineering +13
Mechanism of HCl oxidation (Deacon process) over RuO2
Núria López, Jordi Gómez‐Segura, Raimon P. Marín et al. · Journal of Catalysis · 2008 · 183 citations