Heterometal Incorporation in Metal-Exchanged Zeolites Enables Low-Temperature Catalytic Activity of NO x Reduction

A series of new heterobimetallic zeolites has been synthesized by incorporating a secondary metal cation M (Sc3+, Fe3+, In3+, and La3+) in Cu-exchanged ZSM-5, zeolite-β, and SSZ-13 zeolites under carefully controlled experimental conditions. Characterization by diffuse-reflectance ultraviolet–visibl...

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Veröffentlicht in:Journal of physical chemistry. C 2012-11, Vol.116 (44), p.23322-23331
Hauptverfasser: Yang, Xiaofan, Wu, Zili, Moses-Debusk, Melanie, Mullins, David R, Mahurin, Shannon M, Geiger, Robert A, Kidder, Michelle, Narula, Chaitanya K
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Sprache:eng
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Zusammenfassung:A series of new heterobimetallic zeolites has been synthesized by incorporating a secondary metal cation M (Sc3+, Fe3+, In3+, and La3+) in Cu-exchanged ZSM-5, zeolite-β, and SSZ-13 zeolites under carefully controlled experimental conditions. Characterization by diffuse-reflectance ultraviolet–visible spectroscopy (UV–vis), X-ray powder diffraction (XRD), extended X-ray absorption fine structure spectroscopy (EXAFS), and electron paramagnetic resonance spectroscopy (EPR) does not permit conclusive structural determination but supports the proposal that M3+ is hosted in zeolite structures in the vicinity of Cu(II), resulting in high NO x conversion activity at 150 °C. Among various zeolites reported here, CuFe-SSZ-13 offers the best NO x conversion activity in the 150–650 °C range and is hydrothermally stable when tested under accelerated aging conditions. Mechanistic studies employing stopped-flow diffuse reflectance FT-IR spectroscopy (DRIFTS) suggest that the high concentration of NO+ generated by heterobimetallic zeolites is probably responsible for their superior low-temperature NO x activity.
ISSN:1932-7447
1932-7455
DOI:10.1021/jp3056043