4.8 Article

Azide-Alkyne Click Chemistry over a Heterogeneous Copper-Based Single-Atom Catalyst

Journal

ACS CATALYSIS
Volume 12, Issue 5, Pages 2947-2958

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.1c05610

Keywords

single-atom catalysis; sustainable chemistry; azide-alkyne cycloadditions; triazole synthesis; heterogeneous catalysis

Funding

  1. Italian Ministry of University and Research (MIUR) through the PRIN Project [20179337R7]
  2. Italian Ministry of University and Research (MIUR) through grant Dipartimenti di Eccellenza 2017 entitled Materials for Energy
  3. European Cooperation in Science and Technology (COST) [18234]
  4. Italian Rectors' Conference (CRUI)

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This study reports the high catalytic performance of a family of Cu-based single-atom catalysts for triazole synthesis. The use of a carbon nitride carrier as a ligand for atomically dispersed copper species improves the catalyst activity and selectivity.
One-pot three-component regioselective azide-alkyne cycloadditions are central reactions for synthesizing pharmaceuticals and fine chemicals and are also applied for in vivo metabolic labeling biotechnology. Homogeneous catalysts based on copper species coordinated with ancillary ligands are regularly used to perform this reaction, offering superior catalytic activity and selectivity compared to conventional heterogeneous counterparts based on supported copper nanoparticles. However, the challenge of catalyst recovery limits the use of these homogeneous compounds in many large-scale applications. In this work, we report the high catalytic performance of a family of Cu-based single-atom catalysts for triazole synthesis, with an emphasis on the fundamental understanding of the structure and function of the catalyst. The catalysts were prepared via tricyanomethanide polymerization to create a joint electronic structure where the mesoporous graphitic carbon nitride carrier acts as a ligand for the atomically dispersed copper species. The material properties and the precise metal location/coordination (i.e., deposited in the heptazine pore of carbon nitride, substituted in the framework of carbon nitride, hosted in a vacancy, or entrapped in sandwich-like arrangement) were characterized through a battery of spectroscopic and theoretical methods. The catalysts were employed in the synthesis of 1,2,3-triazoles employing azide-alkyne click reaction under base-free conditions. The single-atom Cu catalysts demonstrated improved activity and selectivity compared to the homogeneous reference catalyst. Density functional theory calculations corroborated the results and showed that the reaction proceeds through a barrier given by the activation of the acetylenic moiety on Cu-1. The activity of this step was primarily affected by the coordination of the metal with the support. Therefore, understanding the metal coordination in single-atom catalysts is critical to further optimizing single-atom catalysts and greening synthetic chemistry.

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