Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO by NH3. We investigated the mechanism of this reaction for a model in which Mn cations are doped into the CeO2(111) surface by quantum-chemical DFT+U calculations. NH3 is preferentially adsorbed on the Lewis acid Mn sites. Dissociation of one of its N–H bonds results in the key NH2 intermediate that has been experimentally observed. NO adsorption on this NH2 intermediate results in nitrosamine (NH2NO) that can then undergo further N–H cleavage reactions to form OH groups. The resulting N2O product is desorbed into the gas phase and can be re-adsorbed through its O atom on an oxygen vacancy in the ceria surface, resulting from water desorptio...
Perovskite SCR catalysts have become a hot research topic in the field of de-NOx catalyst developmen...
International audienceAbstract Mn-based oxides are promising for the selective catalytic reduction (...
Elucidation of redox mechanism is vital to develop highly active catalysts for selective catalytic r...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
The reaction mechanism of selective catalytic reduction (SCR) of NO with NH<sub>3</sub> on W-doped C...
CeO2 has attracted much attention in the field of selective catalytic reduction of NO with NH3 (NH3-...
It is a major challenge to develop the low–temperature catalysts (LTC, <250 °C) with excellent ef...
To understand the molecular-level reaction mechanism and crucial activity-limiting factors of the NH...
The reaction mechanism for the selective catalytic reduction (SCR) of nitric oxide by ammonia on (01...
Mn-TiO<sub>2</sub> oxide catalyst has been studied intensively for selective catalytic reduction (SC...
We present here a density functional theory plus U study of NO reduction with CO, catalyzed by a sin...
Perovskite SCR catalysts have become a hot research topic in the field of de-NOx catalyst developmen...
International audienceAbstract Mn-based oxides are promising for the selective catalytic reduction (...
Elucidation of redox mechanism is vital to develop highly active catalysts for selective catalytic r...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
Mn-promoted CeO2 is a promising catalyst for the low temperature selective catalytic reduction of NO...
The reaction mechanism of selective catalytic reduction (SCR) of NO with NH<sub>3</sub> on W-doped C...
CeO2 has attracted much attention in the field of selective catalytic reduction of NO with NH3 (NH3-...
It is a major challenge to develop the low–temperature catalysts (LTC, <250 °C) with excellent ef...
To understand the molecular-level reaction mechanism and crucial activity-limiting factors of the NH...
The reaction mechanism for the selective catalytic reduction (SCR) of nitric oxide by ammonia on (01...
Mn-TiO<sub>2</sub> oxide catalyst has been studied intensively for selective catalytic reduction (SC...
We present here a density functional theory plus U study of NO reduction with CO, catalyzed by a sin...
Perovskite SCR catalysts have become a hot research topic in the field of de-NOx catalyst developmen...
International audienceAbstract Mn-based oxides are promising for the selective catalytic reduction (...
Elucidation of redox mechanism is vital to develop highly active catalysts for selective catalytic r...