Enhancing Water Tolerance and N 2 Selectivity in NH 3 -SCR Catalysts by Protecting Mn Oxide Nanoparticles in a Silicalite-1 Layer

Mn-based catalysts are promising candidates for eliminating harmful nitrogen oxides (NO ) via selective catalytic reduction with ammonia (NH -SCR) due to their inherent strong redox abilities. However, poor water tolerance and low N selectivity are still the main limitations for practical applicatio...

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Veröffentlicht in:Environmental science & technology 2024-07
Hauptverfasser: Komaty, Sarah, Andijani, Marram, Wang, Ning, Navarro de Miguel, Juan Carlos, Kumar Veeranmaril, Sudheesh, Hedhili, Mohamed Nejib, Silva, Cristina I Q, Wang, Yan, Abou-Daher, Mohamad, Han, Yu, Ruiz-Martinez, Javier
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Sprache:eng
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Zusammenfassung:Mn-based catalysts are promising candidates for eliminating harmful nitrogen oxides (NO ) via selective catalytic reduction with ammonia (NH -SCR) due to their inherent strong redox abilities. However, poor water tolerance and low N selectivity are still the main limitations for practical applications. Herein, we succeeded in preparing an active catalyst for NH -SCR with improved water tolerance and N selectivity based on protecting MnO with a secondary growth of a hydrophobic silicalite-1. This protection suppressed catalyst deactivation by water adsorption. Interestingly, impregnating MnO on MesoTS-1 followed by silicalite-1 protection allowed for a higher dispersion of MnO species, thus increasing the concentration of acid sites. Consequently, the level of N O formation is decreased. These improvements resulted in a broader operating temperature of NO conversion and a modification of the NH -SCR mechanism. Diffuse reflectance infrared Fourier transform spectroscopy analysis revealed that unprotected Mn/MesoTS-1 mainly followed the Eley-Rideal mechanism, while Mn/MesoTS-1@S1 followed both Langmuir-Hinshelwood and Eley-Rideal mechanisms.
ISSN:0013-936X
1520-5851
DOI:10.1021/acs.est.4c01585