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Nanoscale cobalt-manganese oxide catalyst supported on shape-controlled cerium oxide: Effect of nanointerface configuration on structural, redox, and catalytic properties

journal contribution
posted on 2024-11-02, 02:52 authored by Brendan Hillary, Sudarsanam Putla, Mohamad Hassan Amin, Suresh BhargavaSuresh Bhargava
Understanding the role of nanointerface structures in supported bimetallic nanoparticles is vital for the rational design of novel high-performance catalysts. This study reports the synthesis, characterization, and the catalytic application of Co-Mn oxide nanoparticles supported on CeO2 nanocubes with the specific aim of investigating the effect of nanointerfaces in tuning structure-activity properties. High-resolution transmission electron microscopy analysis reveals the formation of different types of Co-Mn nanoalloys with a range of 6 ± 0.5 to 14 ± 0.5 nm on the surface of CeO2 nanocubes, which are in the range of 15 ± 1.5 to 25 ± 1.5 nm. High concentration of Ce3+ species are found in Co-Mn/CeO2 (23.34%) compared with that in Mn/CeO2 (21.41%), Co/CeO2 (15.63%), and CeO2 (11.06%), as evidenced by X-ray photoelectron spectroscopy (XPS) analysis. Nanoscale electron energy loss spectroscopy analysis in combination with XPS studies shows the transformation of Co2+ to Co3+ and simultaneously Mn4+/3+ to Mn2+. The Co-Mn/CeO2 catalyst exhibits the best performance in solvent-free oxidation of benzylamine (89.7% benzylamine conversion) compared with the Co/CeO2 (29.2% benzylamine conversion) and Mn/CeO2 (82.6% benzylamine conversion) catalysts for 3 h at 120 °C using air as the oxidant. Irrespective of the catalysts employed, a high selectivity toward the dibenzylimine product (97-98%) was found compared with the benzonitrile product (2-3%). The interplay of redox chemistry of Mn and Co at the nanointerface sites between Co-Mn nanoparticles and CeO2 nanocubes as well as the abundant structural defects in cerium oxide plays a key role in the efficiency of the Co-Mn/CeO2 catalyst for the aerobic oxidation of benzylamine.

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  1. 1.
    DOI - Is published in 10.1021/acs.langmuir.6b03445
  2. 2.
    ISSN - Is published in 07437463

Journal

Langmuir

Volume

33

Issue

8

Start page

1743

End page

1750

Total pages

8

Publisher

American Chemical Society

Place published

United States

Language

English

Copyright

© 2017 American Chemical Society.

Former Identifier

2006073338

Esploro creation date

2020-06-22

Fedora creation date

2017-05-22

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