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March 14, 2026Nature Communications0 citationsOpen Access

Strategic synthesis of FLPClusters toward catalysis

ZGZhenhao GengAHAyisha HeXYXuexin You

Key Points

  • The aim is to develop a strategic method for synthesizing FLPClusters with effective catalytic properties.
  • Utilized bis(2-(diphenylphosphino)phenyl)ether as a rigid surface ligand
  • Bridged metal atoms with phosphine termini of the ligand
  • Created stable frustrated Lewis pairs on cluster surfaces
  • Synthetized three FLPClusters with varying thiolate ligand structures
  • FLPClusters exhibited high catalytic activity in hydrolytic oxidation of organosilanes
  • Catalytic performance scaled with the number of available FLP sites
  • Both theoretical and experimental findings confirmed FLP-driven catalysis

Abstract

FLPClusters, which are structurally precise metal clusters incorporating Frustrated Lewis Pairs (FLPs), represent a promising class of FLP catalysts. Although FLPClusters have emerged only recently, their precise and strategic synthesis remains underdeveloped. Herein, we report the approach for the strategic synthesis of FLPClusters featuring well-defined, tailorable, and accessible FLP active sites. Our approach utilizes bis(2-(diphenylphosphino)phenyl)ether (DPEphos) as a rigid surface ligand. The two phosphine termini of DPEphos bridge adjacent metal atoms, while the central ether oxygen atom (Lewis base) is geometrically constrained, enabling the formation of stable FLPs with copper atoms (Lewis acid) on the cluster surface. By modulating the structure of ancillary thiolate ligands, we successfully synthesized three FLPClusters. These FLPClusters demonstrate high catalytic activity in the hydrolytic oxidation of organosilanes to silanols. Both theoretical and experimental studies confirm that the catalysis is FLP-driven. Crucially, their catalytic performance scales with the number of FLP sites present. FLPClusters, which are structurally precise metal clusters incorporating Frustrated Lewis Pairs (FLPs), represent a promising class of catalysts, but their tendency to undergo neutralization limits catalytic efficiency. Herein, the authors report the synthesis of FLPClusters featuring well-defined, tailorable, and accessible FLP active sites.

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Cite This Study

Geng et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc59b39f7826a300d201https://doi.org/10.1038/s41467-026-70577-y
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