AI Article Synopsis

  • Single-atom catalysts (SACs) utilize metals more efficiently and show different reactivity compared to traditional metal nanoparticles.
  • The study reveals that platinum SACs (Pt SAs) on anatase TiO support display different coordination environments depending on which surface (001 or 101) they are on, affecting their reactivity.
  • Findings indicate that Pt SAs beneath the (001) surface have lower reactivity due to reduced access to gas, highlighting the importance of understanding heterogeneous coordination environments in the development of SACs.

Article Abstract

Single-atom catalysts (SACs) offer efficient metal utilization and distinct reactivity compared to supported metal nanoparticles. Structure-function relationships for SACs often assume that active sites have uniform coordination environments at particular binding sites on support surfaces. Here, we investigate the distribution of coordination environments of Pt SAs dispersed on shape-controlled anatase TiO supports specifically exposing (001) and (101) surfaces. Pt SAs on (101) are found on the surface, consistent with existing structural models, whereas those on (001) are beneath the surface after calcination. Pt SAs under (001) surfaces exhibit lower reactivity for CO oxidation than those on (101) surfaces due to their limited accessibility to gas phase species. Pt SAs deposited on commercial-TiO are found both at the surface and in the bulk, posing challenges to structure-function relationship development. This study highlights heterogeneity in SA coordination environments on oxide supports, emphasizing a previously overlooked consideration in the design of SACs.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10837418PMC
http://dx.doi.org/10.1038/s41467-024-45367-zDOI Listing

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