Cationic Au(I) Complexes of Indoles.
Pierre Milcendeau1, Mohammed Ramdani1, Elsa van Elslande1
1Université Paris-Saclay, CNRS, Institut de Chimie des Substances Naturelles, UPR2301, 91198 Gif-sur-Yvette, France.
Researchers explored cationic gold(I) complexes with indoles and Buchwald phosphine ligands. They discovered an intermediate coordination mode between the gold atom and the indole C2-C3 double bond, revealing unique electronic properties.
Area of Science:
- Organometallic Chemistry
- Coordination Chemistry
- Organic Synthesis
Background:
- Indole derivatives are important heterocyclic compounds with diverse applications.
- Gold(I) complexes are known for their catalytic activity and unique coordination behavior.
- Buchwald phosphine ligands are widely used in cross-coupling reactions and coordination chemistry.
Purpose of the Study:
- To synthesize and characterize novel cationic gold(I) complexes featuring indole moieties.
- To elucidate the coordination mode of the cationic gold(I) center to the indole C2-C3 double bond.
- To investigate the electronic and structural consequences of this coordination.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy (e.g., 1H, 13C, 31P NMR) was employed to study the electronic structure and bonding.
- X-ray crystallography was utilized to determine the precise molecular structure and coordination geometry.
- Computational methods may have been used to support experimental findings (though not explicitly stated in the abstract).
Main Results:
- Successful synthesis of cationic Au(I)-indole complexes incorporating Buchwald phosphine ligands.
- Experimental evidence revealed an intermediate coordination between η² and η¹ modes.
- Characterization indicated a significant sp³ character at the C3 atom of the indole ring, suggesting a slippage of the gold atom towards C3.
Conclusions:
- The study demonstrates a novel coordination behavior of cationic gold(I) to indole systems.
- This intermediate coordination mode influences the electronic properties of the indole ring.
- The findings contribute to a deeper understanding of gold-mediated reactions involving indoles and related heterocycles.
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