Europium(II) Ynolate Complex: Synthesis, Bonding, and Reactivity.
Qingqing Wen1, Ruyi Li2, Xiaojuan Liu1
1Spin-X Institute, School of Chemistry and Chemical Engineering, State Key Laboratory of Luminescent Materials and Devices, South China University of Technology, Guangzhou 510641, China.
Journal of the American Chemical Society
|September 29, 2025
Summary
Researchers report the first lanthanide ynolate complex, a europium(II) ynolate. This discovery advances organometallic chemistry by characterizing elusive ynolate complexes, opening new avenues for reactivity studies.
Area of Science:
- Organometallic Chemistry
- Inorganic Chemistry
- Coordination Chemistry
Background:
- Anionic ketenes exist as two resonance forms: ketenyl anions and ynolate anions.
- While ketenyl complexes are well-characterized, crystalline ynolate complexes remain elusive in the literature.
- Lanthanide complexes offer unique electronic and steric properties for stabilizing reactive species.
Purpose of the Study:
- To synthesize and characterize the first lanthanide ynolate complex.
- To elucidate the electronic structure and bonding characteristics of the ynolate ligand in a lanthanide complex.
- To investigate the reactivity of the novel lanthanide ynolate complex.
Main Methods:
- Synthesis via sigma-bond metathesis reaction followed by carbonylation.
- Single-crystal X-ray diffraction for structural determination.
- Density Functional Theory (DFT) calculations for electronic structure analysis and mechanistic studies.
Main Results:
- The first lanthanide ynolate complex, a europium(II) ynolate, was successfully synthesized and characterized.
- X-ray diffraction and DFT calculations confirmed the dominance of the ynolate resonance form with significant negative charge on oxygen.
- Reactivity studies showed C-centered trapping products with various electrophiles, indicating ynolate character.
Conclusions:
- This work provides the first crystalline example of a lanthanide ynolate complex, overcoming a significant synthetic challenge.
- The study confirms the ynolate resonance form's dominance and reveals unique electronic properties.
- The observed reactivity, including a shift towards ketenyl character in reactions with carbodiimide, highlights the potential for novel transformations.
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