详细信息
Roles of the structural defects and the combined acidity of H3PW12O40/Zr-MCM-41 catalysts in ultralow sulfur diesel production ( SCI-EXPANDED收录 EI收录)
文献类型:期刊文献
英文题名:Roles of the structural defects and the combined acidity of H3PW12O40/Zr-MCM-41 catalysts in ultralow sulfur diesel production
作者:Chen, Lifang[1];Wang, Jin An[1];de la Fuente, Natali[1];Zhou, Sinong[2];Jiang, Peng[2];Song, Yueqin[2];Zhou, Xiaolong[2]
机构:[1]Inst Politecn Nacl, ESIQIE, Ave Inst Politecn Nacl S-N, Mexico City 07738, DF, Mexico;[2]East China Univ Sci & Technol, Inst Chem Engn, Int Joint Res Ctr Green Energy & Chem Engn, Shanghai 200237, Peoples R China
年份:2022
卷号:46
期号:5
起止页码:2081
外文期刊名:NEW JOURNAL OF CHEMISTRY
收录:;EI(收录号:20220711628243);WOS:【SCI-EXPANDED(收录号:WOS:000740742400001)】;
基金:The authors express thanks for the financial support from projects SIP-20210451 and SIP20210888. N. de La Fuente thanks CONACyT-Mexico for offering her doctoral scholarship for this investigation. Help in the improvement of figure quality from Dr U. Arellano is appreciated. The international collaboration between The Instituto Politecnico Nacional and the East China University of Science & Technology is acknowledged.
语种:英文
外文关键词:Sulfur - Diesel engines - Catalytic oxidation - Grafting (chemical) - Catalyst activity
摘要:Oxidative desulfurization (ODS) has been become an important technical route for the production of ultralow-sulfur fuel. This work focuses on a deep understanding of the roles of structural defects, surface acidity and catalytic properties of phosphotungstic acid grafted on Zr-doped MCM-41 catalysts in the oxidation of 4,6-dimethyldibenzothiophene (4,6-DMDBT) in a model diesel. Two kinds of Zr-MCM-41 mesoporous solids (termed ZrM-I and ZrM-II) were synthesized with different methods and their structural defects and surface acidity were investigated. When H3PW12O40 (termed HPW) was grafted on the ZrM solids, their dispersion and structural deformation were largely governed by the interaction with the ZrM support. Three types of HPW nanoparticles, confirmed by P-31-NMR-MAS spectra, were formed, which were related to the unchanged, deformed and defective Keggin units. The amount of total surface acidity was 227 mu mol g(-1) for HPW/ZrM-I and 307 mu mol g(-1) for the HPW/ZrM-II catalyst. For 4,6-DMDBT oxidation, the pore regularity and structural defects of the ZrM supports and the surface acidity of the HPW/ZrM catalysts played the key roles. The HPW/ZrM-II catalyst showed higher catalytic activity, due to its larger number of surface acid sites resulting from the greater amount of deformed and defective Keggin-type nanoclusters. The 4,6-DMDBT conversion reached nearly 100% over the HPW/ZrM-II catalyst under optimal condition (reaction temperature: 70 degrees C; reaction time: 60 min; catalyst concentration: 0.3 g L-1; H2O2/4,6-DMDBT molar ratio: 8; HCOOH/H2O2 molar ratio: 1.5). The 4,6-DMDBT oxidation was sterically favored on the combined Lewis (L) and Bronsted (B) acid sites in the catalysts. L acid sites were the centers for 4,6-DMDBT adsorption and the neighboring B acid sites participated in the transfer of protons and oxygen atoms between adsorbed sulfur compounds and the surface peroxophosphotungstate complex, benefiting the 4,6-DMDBT oxidation.
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