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  4. Operando diffuse reflectance infrared detection of cyanide intermediate species during the reaction of formaldehyde with ammonia over V2O(5)/ WO3-TiO2
 
research article

Operando diffuse reflectance infrared detection of cyanide intermediate species during the reaction of formaldehyde with ammonia over V2O(5)/ WO3-TiO2

Nuguid, Rob Jeremiah G.
•
Elsener, Martin
•
Ferri, Davide
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December 5, 2021
Applied Catalysis B-Environmental

Hydrogen cyanide (HCN) is a highly poisonous gas that can form through the reaction between formaldehyde and ammonia (NH3) in the exhaust. While this detrimental side reaction has been the subject of recent catalytic studies under selective catalytic reduction conditions, the molecular mechanism leading to the release of HCN remains far from elucidated. Here, we report the detection of the cyanide intermediate species by operando diffuse reflectance infrared spectroscopy, thereby providing unambiguous evidence that the HCN-forming reaction occurs on the catalyst surface. Formaldehyde likely reacts from the gas phase with pre-adsorbed NH3 to form HCN. Although formate species were formed abundantly upon formaldehyde introduction, they were not responsible for the high level of HCN emissions observed. TiO2 alone is sufficient to catalyze the side reaction, but VOx and/or WOx sites increase HCN production by preventing the formation of inactive polyamide species. These mechanistic insights should serve as a basis for understanding the chemistry responsible for the side reaction so that mitigation measures can be put forward.

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Type
research article
DOI
10.1016/j.apcatb.2021.120629
Web of Science ID

WOS:000696917400006

Author(s)
Nuguid, Rob Jeremiah G.
Elsener, Martin
Ferri, Davide
Krocher, Oliver  
Date Issued

2021-12-05

Publisher

ELSEVIER

Published in
Applied Catalysis B-Environmental
Volume

298

Article Number

120629

Subjects

Chemistry, Physical

•

Engineering, Environmental

•

Engineering, Chemical

•

Chemistry

•

Engineering

•

scr

•

formaldehyde

•

hcn

•

cyanides

•

drifts

•

modulated excitation

•

selective catalytic-reduction

•

formic-acid

•

nitrogen-oxides

•

hydrogen-cyanide

•

nitric-oxide

•

ft-ir

•

active-sites

•

adsorption

•

tio2

•

no

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GR-KRO  
Available on Infoscience
September 25, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/181624
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