Applied Catalysis2022,Vol.30412.DOI:10.1016/j.apcatb.2021.120984

Ethanol to distillate-range molecules using Cu/MgxAlOy catalysts with low Cu loadings

Cuello-Penaloza, Paolo A. Dastidar, Raka G. Wang, Shao-Chun Du, Yi Lanci, Michael P. Wooler, Bradley Kliewer, Christine E. Hermans, Ive Dumesic, James A. Huber, George W.
Applied Catalysis2022,Vol.30412.DOI:10.1016/j.apcatb.2021.120984

Ethanol to distillate-range molecules using Cu/MgxAlOy catalysts with low Cu loadings

Cuello-Penaloza, Paolo A. 1Dastidar, Raka G. 1Wang, Shao-Chun 2Du, Yi 3Lanci, Michael P. 3Wooler, Bradley 3Kliewer, Christine E. 3Hermans, Ive 2Dumesic, James A. 1Huber, George W.1
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作者信息

  • 1. Univ Wisconsin
  • 2. Univ Wisconsin Madison
  • 3. ExxonMobil Res & Engn Co
  • 折叠

Abstract

A series of calcined MgAl mixed metal oxide catalysts with low Cu loadings (0.1-1.5 wt%) were tested for ethanol oligomerization to distillate-range molecules. The low Cu loading catalysts (0.1-0.6 wt%) had high selectivity to linear chain C4+ alcohols (49-63% selectivity) and C6+ esters (45-66% of total esters). More specifically, the diesel fuel precursor selectivities were over 75% for low Cu loading catalysts (0.1-0.6 wt%), with a decrease to 49% for a higher Cu loading catalyst (> 1.2 wt% Cu) due to increased ethyl acetate and acetone formation. Alcohol and ester product selectivities follow a Schultz-Flory distribution. Alcohol selectivity was found to vary inversely with BET surface areas of the catalysts, whereas ester selectivity was found to increase with higher base site counts. However, Cu wt% loading was found to have a stronger impact in overall catalyst activity. The catalysts deactivated proportionally to the number of turnovers mainly due to coking, but could be regenerated by calcination.

Key words

Alcohol coupling reactions/Esterification/Mixed metal oxides/Schultz-Flory distribution/Catalyst stability/SUPERCRITICAL METHANOL DEPOLYMERIZATION/CONDENSATION-REACTIONS/HYDROXYAPATITE CATALYSTS/ETHYL-ACETATE/ALCOHOLS/CONVERSION/BUTANOL/OXIDES/COPPER/SITES

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出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量12
参考文献量45
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