April 2017

Journal

Catalytic Dehydration of Biomass Derived 1-Propanol to Propene over M-ZSM-5 (M=H, V, Cu, or Zn)

By:
Lepore, Andrew W; Li, Zhenglong ; Davison, Brian H; Foo, Guo Shiou ; Wu, Zili ; Narula, Chaitanya K
Journal Name:
Industrial & Engineering Chemistry Research
Page Number:
1-N/A
Volume:
56
Issue Number:
1
Publication Date:
April 2017
View DOI Listing:
https://doi.org/10.1021/acs.iecr.7b00592

Abstract

The impetus to explore biomass derived chemicals arises from a desire to enable renewable and sustainable commodity chemicals. To this end, we report catalytic production of propene, a building-block molecule, from 1-propanol. We found that zeolite catalysts are quite versatile and can produce propene at or below 230 °C with high selectivity. Increasing the reaction temperature above 230 °C shifted product selectivity towards C4+ hydrocarbons. Cu-ZSM-5 was found to exhibit a broader temperature window for high propene selectivity and could function at higher 1-propanol space velocities than H-ZSM-5. A series of experiments with 1-propan(ol-D) showed deuterium incorporation in the hydrocarbon product stream including propene suggesting that hydrocarbon pool type pathway might be operational concurrent with dehydration to produce C4+ hydrocarbons. Diffuse reflectance infra-red spectroscopy of 1-propanol and 1-propan(ol-D) over Cu-ZSM-5 in combination with deuterium labeling experiments suggest that deuterium incorporation occurs in two steps. Incorporation of deuterium occurs post dehydration via exchange with the partially deuterated catalyst surface.


Related Researchers