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- W2902095964 abstract "Iridium catalyst using different zirconium modified-SBA-15 supports were tested in the HDT of tetralin and typical sulfur and nitrogen compounds present in diesel feed. The zirconium modified-SBA-15 supports were synthesized by sol-gel method using two sources of zirconium, zirconyl chloride and zirconium (IV) propoxide. Regarding XRD, N2 adsorption isotherms and TEM, we obtained better textural and structural properties using the alkoxide, especially when lactic acid was added in order to decrease the hydrolysis rate of zirconium propoxide. In addition, XPS and DRUV-Vis demonstrated that zirconium was incorporated mainly as tetrahedral Zr4+ species NH3-TPD showed that higher acidity is observed when tetrahedral Zr4+ species are present. Iridium dispersion was determined by TEM and H2-chemisorption and reducibility by XPS and TPR. Among the catalysts prepared, the catalyst synthesized using zirconium propoxide and lactic acid presented the highest dispersion, lowest cluster size and lowest reduction temperature. Consequently, this was the most active catalyst for the hydrogenation of tetralin, the HDN of indole and quinoline and the HDS of dibenzothiophene (DBT) and 4,6-dimethyldibenzothiophene (4,6-DMDBT). The presence of Zr+4 had a remarkable effect on the dispersion and reducibility capacity of the iridium actives species. In addition, the presence of moderate acidity in this material gives the best catalyst for HDN and HDS in the studied conditions. The inhibition effect of the sulfur and nitrogen compounds over tetralin hydrogenation was studied using individual feeds and a mixture feed. We observe that 4,6-DMDBT and quinoline were the most refractory compounds and they showed the highest inhibition effect. Tetralin hydrogenation was stronger inhibited when using the mixture feed compared with the individual feeds. This can be explained in terms of the competition between the different compounds that retard the rate of hydrogenation of tetralin. However, a high conversion of tetralin was achieved even when 300 ppm of S or N was added. The most active catalyst synthesized by direct synthesis using propoxide and lactic acid was stable after several catalytic cycles making this material as potential catalyst for HDT reaction at mild conditions." @default.
- W2902095964 created "2018-12-11" @default.
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- W2902095964 date "2019-03-01" @default.
- W2902095964 modified "2023-09-25" @default.
- W2902095964 title "HDT of the model diesel feed over Ir-modified Zr-SBA-15 catalysts" @default.
- W2902095964 cites W1213059277 @default.
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- W2902095964 cites W1966134725 @default.
- W2902095964 cites W1966396907 @default.
- W2902095964 cites W1968312204 @default.
- W2902095964 cites W1973826706 @default.
- W2902095964 cites W1975235090 @default.
- W2902095964 cites W1976180509 @default.
- W2902095964 cites W1976896472 @default.
- W2902095964 cites W1977058657 @default.
- W2902095964 cites W1981754653 @default.
- W2902095964 cites W1984448453 @default.
- W2902095964 cites W1986513443 @default.
- W2902095964 cites W1988229782 @default.
- W2902095964 cites W1988745485 @default.
- W2902095964 cites W1991333594 @default.
- W2902095964 cites W1993651102 @default.
- W2902095964 cites W1994431033 @default.
- W2902095964 cites W1995041236 @default.
- W2902095964 cites W1998552345 @default.
- W2902095964 cites W2002977520 @default.
- W2902095964 cites W2012516468 @default.
- W2902095964 cites W2014750526 @default.
- W2902095964 cites W2016527922 @default.
- W2902095964 cites W2023272789 @default.
- W2902095964 cites W2025012426 @default.
- W2902095964 cites W2026675989 @default.
- W2902095964 cites W2027209734 @default.
- W2902095964 cites W2036443982 @default.
- W2902095964 cites W2042750990 @default.
- W2902095964 cites W2047118834 @default.
- W2902095964 cites W2047941225 @default.
- W2902095964 cites W2049217736 @default.
- W2902095964 cites W2054620380 @default.
- W2902095964 cites W2055769111 @default.
- W2902095964 cites W2062206209 @default.
- W2902095964 cites W2066006253 @default.
- W2902095964 cites W2067499817 @default.
- W2902095964 cites W2070482246 @default.
- W2902095964 cites W2073257931 @default.
- W2902095964 cites W2074007084 @default.
- W2902095964 cites W2081155546 @default.
- W2902095964 cites W2082729129 @default.
- W2902095964 cites W2084938107 @default.
- W2902095964 cites W2085263615 @default.
- W2902095964 cites W2088426339 @default.
- W2902095964 cites W2093904525 @default.
- W2902095964 cites W2101996716 @default.
- W2902095964 cites W2142010121 @default.
- W2902095964 cites W2155628851 @default.
- W2902095964 cites W2161726633 @default.
- W2902095964 cites W2167341072 @default.
- W2902095964 cites W2171870069 @default.
- W2902095964 cites W2194955363 @default.
- W2902095964 cites W2270727437 @default.
- W2902095964 cites W2318590206 @default.
- W2902095964 cites W2327723066 @default.
- W2902095964 cites W2333066207 @default.
- W2902095964 cites W2333870785 @default.
- W2902095964 cites W2339094010 @default.
- W2902095964 cites W2465482372 @default.
- W2902095964 cites W2529925525 @default.
- W2902095964 cites W2531171457 @default.
- W2902095964 cites W2549396439 @default.
- W2902095964 cites W2624412829 @default.
- W2902095964 cites W2741265377 @default.
- W2902095964 cites W2746948964 @default.
- W2902095964 cites W2797961629 @default.
- W2902095964 cites W2799715718 @default.
- W2902095964 cites W2800724307 @default.
- W2902095964 cites W2800801188 @default.
- W2902095964 cites W640605354 @default.
- W2902095964 doi "https://doi.org/10.1016/j.fuel.2018.11.148" @default.
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