Experiment and density functional theory (DFT) models are combined to develop a unified, quantitative model of the mechanism and kinetics of fast selective catalytic reduction (SCR) of NO/NO2 mixtures over H-SSZ-13 zeolite. Rates, rate orders, and apparent activation energies collected under differential conditions reveal two distinct kinetic regimes. First-principles thermodynamics simulations are used to determine the relative coverages of free Brønsted sites, chemisorbed NH4+ and physisorbed NH3 as a function of reaction conditions. First-principles metadynamics calculations show that all three sites can contribute to the rate-limiting N-N bond forming step in fast SCR. The results are used to parameterize a kinetic model that encompasses the full range of reaction conditions and recovers observed rate orders and apparent activation energies. Observed kinetic regimes are related to changes in most-abundant surface intermediates.
Financial support was provided by the National Science Foundation GAOLI program under
award number 1258690-CBET. We thank the Center for Research Computing at Notre
Revised: April 24, 2020 |
Published: August 4, 2017
Citation
Li S., Y. Zheng, F. Gao, J. Szanyi, and W.F. Schneider. 2017.Experimental and Computational Interrogation of Fast SCR Mechanism and Active Sites on H-form SSZ-13.ACS Catalysis 7, no. 8:5087–5096.PNNL-SA-125720.doi:10.1021/acscatal.7b01319