The effect of C-OH functionality on the surface chemistry of biomass-derived molecules: ethanol chemistry on Rh(100)

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Date

2016

Authors

B. Caglar
M. Olus Ozbek
J. W. (Hans) Niemantsverdriet
C. J. (Kees-Jan) Weststrate

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Journal ISSN

Volume Title

Publisher

ROYAL SOC CHEMISTRY

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Green Open Access

Yes

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Abstract

The adsorption and decomposition of ethanol on Rh(100) was studied as a model reaction to understand the role of C-OH functionalities in the surface chemistry of biomass-derived molecules. A combination of experimental surface science and computational techniques was used: (i) temperature programmed reaction spectroscopy (TPRS) reflection absorption infrared spectroscopy (RAIRS) work function measurements (Kelvin Probe - KP) and density functional theory (DFT). Ethanol produces ethoxy (CH3CH2O) species via O-H bond breaking upon adsorption at 100 K. Ethoxy decomposition proceeds differently depending on the surface coverage. At low coverage the decomposition of ethoxy species occurs via beta-C-H cleavage which leads to an oxometallacycle (OMC) intermediate. Decomposition of the OMC scissions (at 180-320 K) ultimately produces CO H-2 and surface carbon. At high coverage along with the pathway observed in the low coverage case a second pathway occurs around 140-200 K which produces an acetaldehyde intermediate via alpha-C-H cleavage. Further decomposition of acetaldehyde produces CH4 CO H-2 and surface carbon. However even at high coverage this is a minor pathway and methane selectivity is 10% at saturation coverage. The results suggests that biomass-derived oxygenates which contain an alkyl group react on the Rh(100) surface to produce synthesis gas (CO and H-2) surface carbon and small hydrocarbons due to the high dehydrogenation and C-C bond scission activity of Rh(100).

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Keywords

THERMAL-DESORPTION, DECOMPOSITION PATHWAYS, ETHYLENE-GLYCOL, LOW-TEMPERATURE, BOND SCISSION, ADSORPTION, CHEMISORPTION, OXIDATION, ALCOHOLS, NI(111)

Fields of Science

02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences

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OpenCitations Citation Count
15

Source

Physical Chemistry Chemical Physics

Volume

18

Issue

43

Start Page

30117

End Page

30127
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CrossRef : 12

Scopus : 13

PubMed : 2

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Mendeley Readers : 16

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