Single-Atom Alloy Catalysis

Катализ на одноатомных сплавах
Georgios Giannakakis, Ryan T. Hannagan, Maria Flytzani‐Stephanopoulos, E. Charles H. Sykes
2020-06-26

CO poisoning resistancesingle-atom alloyssingle-site catalysisspillover (bifunctional mechanisms)transition metal scaling relationships
Single-atom alloys (SAAs) play an increasingly significant role in the field of single-site catalysis and are typically composed of catalytically active elements atomically dispersed in more inert and catalytically selective host metals. SAAs have been shown to catalyze a range of industrially important reactions in electro-, photo-, and thermal catalysis studies. Due to the unique geometry of SAAs, the location of the transition state and the binding site of reaction intermediates are often decoupled, which can enable both facile dissociation of reactants and weak binding of intermediates, two key factors for efficient and selective catalysis. Often, this results in deviations from transition metal scaling relationships that limit conventional catalysts. SAAs also offer reduced susceptibility to CO poisoning, cost savings from reduced precious metal usage, opportunities for bifunctional mechanisms via spillover, and higher resistance to deactivation by coking that plagues many industrial catalysts. In this review, we begin by introducing SAAs and describe how model systems and nanoparticle catalysts can be prepared and characterized. We then review all available SAA literature on a per reaction basis before concluding with a description of the general properties of this new class of heterogeneous catalysts and presenting opportunities for future research and development.
1
SAAs catalyze a range of industrially important reactions across electro-, photo-, and thermal catalysis, demonstrating broad applicability.
2
SAAs often deviate from conventional transition metal scaling relationships, allowing catalytic behaviors not possible with traditional catalysts.
3
SAAs reduce susceptibility to CO poisoning, lower precious metal usage (cost savings), enable bifunctional mechanisms via spillover, and show higher resistance to coking compared with many industrial catalysts.
4
Single-atom alloys (SAAs) consist of catalytically active atoms atomically dispersed in more inert, selective host metals, forming a distinct class of single-site heterogeneous catalysts.
5
The unique geometry of SAAs decouples transition state location from intermediate binding sites, enabling both facile reactant dissociation and weak intermediate binding, improving efficiency and selectivity.

Single-atom alloys (SAAs) as heterogeneous catalysts

Catalytic properties and mechanisms of SAAs including reaction activity/selectivity, transition-state and intermediate binding decoupling, resistance to CO poisoning and coking, preparation/characterization of model and nanoparticle systems, and deviations from traditional transition-metal scaling relationships

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2020-06-26
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Authors
Georgios Giannakakis
Ryan T. Hannagan
Maria Flytzani‐Stephanopoulos
E. Charles H. Sykes
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