Cr-Fe-Ni-Cu Quaternary Nanostructure as a Substitute for Precious Metals in Automotive Three-Way Catalysts.

ACS Omega

Division of Materials Science and Chemistry, Faculty of Advanced Science and Technology, Kumamoto University, 2-39-1 Kurokami, Chuo, Kumamoto860-8555, Japan.

Published: December 2022

The replacement of precious metals (Rh, Pd, and Pt) in three-way catalysts with inexpensive and earth-abundant metal alternatives is an ongoing challenge. In this research, we examined various quaternary metal catalysts by selecting from six 3d transition metals, i.e., Cr, Mn, Fe, Co, Ni, and Cu, equimolar amounts (0.1 mol each), which were prepared on the AlO support (1 mol Al) using H reduction treatment at 900 °C. Among 15 combinations, the best catalytic performance was achieved by the CrFeNiCu system. Light-off of NO-CO-CH-O-HO mixtures proceeded at the lowest temperature of ≤200 °C for CO, ≤300 °C for CH, and ≤400 °C for NO when the molar fraction of Cr in Cr FeNiCu was around = 0.1. The activity for CO/CH oxidation was superior to that of reference Pt/AlO catalysts but was less active for NO reduction. The structural analysis using scanning transmission electron microscopy and X-ray absorption spectroscopy showed that the as-prepared catalyst consisted of FeNiCu alloy nanoparticles dispersed on the CrO-AlO support. However, the structural change occurred under a catalytic reaction atmosphere, i.e., producing NiCu alloy nanoparticles dispersed on a NiFeO moiety and CrO-AlO support. The oxidation of CO/CH can be significantly enhanced in the presence of Cr oxide, resulting in a faster decrease in O concentration and thus regenerating the NiCu metallic surface, which is active for NO reduction to N.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9753504PMC
http://dx.doi.org/10.1021/acsomega.2c05043DOI Listing

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