Insights into the mechanisms of NH3 inhibition on Cu-CHA SCR catalysts
Abstract
Abstract Ammonia (NH 3 ) inhibition during the selective catalytic reduction (SCR) of nitrogen oxides (NO x ) over Cu-exchanged chabazite (Cu-CHA) catalysts limits low-temperature performance, yet its molecular origin remains unclear. Here we show that excess NH 3 selectively suppresses the oxidation half-cycle of the SCR reaction while leaving the reduction half-cycle largely unaffected. By combining kinetic measurements, operando electron paramagnetic resonance spectroscopy, and density functional theory calculations, we identify hindered mobility of Cu + ions as the key factor. Specifically, NH 3 coordination increases the energy barrier for Cu + diffusion, preventing the formation of reactive Cu 2+ -oxo dimer intermediates required for efficient oxidation. Spectroscopic measurements further reveal that the extent of inhibition depends strongly on temperature and copper loading. These insights provide a mechanistic basis for mitigating NH 3 inhibition, suggesting that improved catalyst design and optimized operating conditions can enhance low-temperature SCR performance in practical emission control systems.
Article Details
Authors (8)
Dhruba J. Deka
Mingyu Wan
Garam Lee
Eric Walter
Fanglin Che
Department of Chemical Engineering
Kenneth G. Rappe
János Szanyi
Yong Wang