Stable platinum nanoparticles on specific MgAl 2 O 4 spinel facets at high temperatures in oxidizing atmospheres

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Abstract

The development of thermally stable, nanometer-sized precious metal-based catalysts remains a daunting challenge. Such materials, especially those based on the use of costly platinum metal, are essential and, to date, non-replaceable for a large number of industrially important catalytic processes. Here we report a well-defined cuboctahedral MgAl 2 O 4 spinel support material that is capable of stabilizing platinum particles in the range of 1-3 nm on its relatively abundant {111} facets during extremely severe aging at 800C in air for 1 week. The aged catalysts retain platinum dispersions of 15.9% with catalytic activities for methanol oxidation being ∼80% of that of fresh ones, whereas a conventional Pt/γ-Al 2 O 3 catalyst is severely sintered and nearly inactive. We reveal the origin of the markedly superior ability of spinel {111} facets, resulting from strong interactions between spinel surface oxygens and epitaxial platinum {111} facets, inspiring the rational design of anti-sintering supported platinum group catalysts. © 2013 Macmillan Publishers Limited.

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Li, W. Z., Kovarik, L., Mei, D., Liu, J., Wang, Y., & Peden, C. H. F. (2013). Stable platinum nanoparticles on specific MgAl 2 O 4 spinel facets at high temperatures in oxidizing atmospheres. Nature Communications, 4. https://doi.org/10.1038/ncomms3481

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