4.6 Article

Impact of the Oxygen Defects and the Hydrogen Concentration on the Surface of Tetragonal and Monoclinic ZrO2 on the Reduction Rates of Stearic Acid on Ni/ZrO2

期刊

CHEMISTRY-A EUROPEAN JOURNAL
卷 21, 期 6, 页码 2423-2434

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/chem.201405312

关键词

decarbonylation; EDX-TEM; hydrodeoxygenation; IR spectroscopy; isotopes; XAFS

资金

  1. Bavarian Ministry of Economic Affairs and Media, Energy and Technology (Bayerisches Staatsministerium fur Wirtschaft und Medien, Energie und Technologie)
  2. Bavarian State Ministry of Education, Science and the Arts (Bayerisches Staatsministerium fur Bildung und Kultus, Wissenschaft und Kunst)
  3. United States (US) Department of Energy (DOE) through University of California at Davis [DE-FG02-03ER46057]
  4. DOE by Battelle [DE-AC05-76L01830]
  5. Office of Biological and Environmental Research at PNNL
  6. US DOE Office of Science, the Office of Basic Energy Sciences (BES), the Division of Chemical Sciences, Geosciences Biosciences
  7. DOE/BES
  8. Canadian Light Source
  9. University of Washington
  10. APS
  11. DOE [DE- AC02-06CH11357]

向作者/读者索取更多资源

The role of the specific physicochemical properties of ZrO2 phases on Ni/ZrO2 has been explored with respect to the reduction of stearic acid. Conversion on pure m-ZrO2 is 1.3 times more active than on t-ZrO2, whereas Ni/m-ZrO2 is three times more active than Ni/t-ZrO2. Although the hydrodeoxygenation of stearic acid can be catalyzed solely by Ni, the synergistic interaction between Ni and the ZrO2 support causes the variations in the reaction rates. Adsorption of the carboxylic acid group on an oxygen vacancy of ZrO2 and the abstraction of the -hydrogen atom with the elimination of the oxygen atom to produce a ketene is the key to enhance the overall rate. The hydrogenated intermediate 1-octadecanol is in turn decarbonylated to heptadecane with identical rates on all catalysts. Decarbonylation of 1-octadecanol is concluded to be limited by the competitive adsorption of reactants and intermediate. The substantially higher adsorption of propionic acid demonstrated by IR spectroscopy and the higher reactivity to O-2 exchange reactions with the more active catalyst indicate that the higher concentration of active oxygen defects on m-ZrO2 compared to t-ZrO2 causes the higher activity of Ni/m-ZrO2.

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