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Related Concept Videos

Heterogeneous Catalysis01:22

Heterogeneous Catalysis

138
Heterogeneous catalysis involves a catalyst in a different phase from the reactants. It is a process where the catalyst and the reactants are in distinct phases, typically solid and gas or liquid.Most heterogeneous catalysts are metals, metal oxides, or acids. The list includes transition metals like iron (Fe), cobalt (Co), nickel (Ni), palladium (Pd), platinum (Pt), chromium (Cr), manganese (Mn), tungsten (W), silver (Ag), and copper (Cu). These metals possess partially vacant d orbitals that...
138

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Fabrication of Spatially Confined Complex Oxides
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Spatially Aligned Binary Single-Site Catalyst on Defective SiO2 for Cascading Reactions.

Juanjuan Yang1,2, Yanran Cui1,2, Ying Zhao2,3

  • 1State Key Laboratory of Biobased Transportation Fuel Technology, College of Biosystems Engineering and Food Science, Zhejiang University, Hangzhou 310058, China.

Journal of the American Chemical Society
|June 12, 2025
PubMed
Summary

Researchers developed a novel binary single-site catalyst, Cu₁-Zr₁@SiO₂, for efficient cascade reactions. This catalyst precisely aligns copper and zirconium sites, enhancing selectivity for C₃+ olefins in ethanol conversion.

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Area of Science:

  • Heterogeneous catalysis
  • Nanomaterials
  • Catalyst design

Background:

  • Single-atom catalysts (SACs) and dual-atom catalysts (DACs) are advancing heterogeneous catalysis.
  • Uniformly distributed catalytic sites limit effectiveness in complex multistep cascading reactions.
  • Precise spatial control of distinct single sites for sequential reactions remains a significant challenge.

Purpose of the Study:

  • To develop a novel binary single-site catalyst with spatially aligned catalytic sites for cascade reactions.
  • To investigate the synthesis and characterization of the Cu₁-Zr₁@SiO₂ catalyst.
  • To evaluate the catalyst's performance in the ethanol conversion to butenes cascade reaction.

Main Methods:

  • Synthesis of the Cu₁-Zr₁@SiO₂ catalyst using a modified reverse microemulsion approach.
  • Characterization of the catalyst's surface and bulk structure using Low-Energy Ion Scattering Spectroscopy (LEIS).
  • Testing the catalyst's performance in ethanol conversion, a model cascade reaction.

Main Results:

  • The Cu₁-Zr₁@SiO₂ catalyst features spatially aligned Cu and Zr single sites, with Cu on the surface and Zr in the bulk.
  • The catalyst successfully facilitated ethanol conversion to C₃+ olefins with a selectivity of 77.0% (56.0% butenes).
  • The specific spatial arrangement suppressed ethylene formation and enhanced the desired product selectivity.

Conclusions:

  • The developed binary single-site catalyst offers precise spatial control over catalytic active sites.
  • This catalyst design is effective for intricate multistep cascading reactions like ethanol conversion.
  • The study demonstrates a promising strategy for designing advanced catalysts for selective chemical transformations.