4.7 Article

Enhanced photooxidative desulphurization of dibenzothiophene over fibrous silica tantalum: Influence of metal-disturbance electronic band structure

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INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 48, 期 17, 页码 6575-6585

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PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2022.02.008

关键词

Fibrous silica tantalum; Energy level; Redox potential; Photooxidative desulfphurization; Dibenzothiophene

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Fibrous silica tantalum (FSTa) and metal oxides (AgO, CuO, ZnO)/FSTa catalysts were prepared and characterized for the photocatalytic oxidative desulfurization (PODS) of dibenzothiophene (DBT). The addition of metal oxides decreased the efficiency of PODS, possibly due to mismatched redox potentials. Among the metal oxides loaded FSTa, Zn/FSTa exhibited higher desulfurization rate and could directly oxidize DBT into dibenzothiophene sulfone (DBTO2). The kinetics study showed that the photodegradation over Zn/FSTa followed the pseudo-first-order and adsorption was the rate-limiting step.
Fibrous silica tantalum (FSTa) and a series of metal oxides (silver oxide (AgO), copper oxide (CuO) and zinc oxide (ZnO)) supported on FSTa were prepared by hydrothermal and elec-trochemical method, respectively. X-ray diffraction, nitrogen adsorption-desorption ana-lyses, Fourier-transform infrared, ultraviolet-visible diffuse reflectance spectroscopy, and photoluminescence were used to characterize the catalysts. The catalyst activity towards on photocatalytic oxidative desulfurization (PODS) of 100 mg L-1 dibenzothiophene (DBT) was ranked in the following order: FSTa (3.03 x 10-3 mM min-1) > Zn/FSTa (2.65 x 10-3 mM min-1) > Cu/FSTa (2.33 x 10-3 mM min-1) > Ag/FSTa (1.46 x 10-3 mM min-1) under visible light irradiation for 150 min. This result demonstrated that the addition of metal oxides lowered the efficiency of PODS of DBT, most probably due to the unfit energy level of the photocatalyst towards redox potentials of superoxide anion radical (center dot O2-) and hydroxyl radical (center dot OH). Nevertheless, among the metal oxides loaded FSTa, Zn/FSTa showed a higher desulfurization rate, which likely due to its higher valence band energy (EVB = 3.12 eV) than the redox potential of the H2O/center dot OH (+2.4 eV vs. NHE), which allowed the production of center dot OH for oxidation of DBT into dibenzothiophene sulfone (DBTO2). In parallel, the hole at the VB of ZnO can also directly oxidize DBT to DBTO2, as confirmed by the scavenger experiment. A kinetics study using Langmuir-Hinshelwood model illustrated that the photodegradation over Zn/FSTa followed the pseudo-first -order, and adsorption was the rate-limiting step. These findings are believed to aid in the rational design of high-performance photocatalysts for various photocatalytic appli-cations, especially the removal of sulphur-containing compounds from fuel oils.(c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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