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Isolating Free Carbenes, their Mixed Dimers and Organic Radicals
Published on: April 19, 2019
Isolable radical cation and dication of dialumene
Xufang Liu1, Arseni Kostenko1, Eva Körber2
1Department of Chemistry, Institute of Silicon Chemistry and Catalysis Research Center, TUM School of Natural Sciences, Technische Universität München, Garching bei München, Germany.
Researchers synthesized stable aluminum radical cations and dications, analogous to alkenes. These novel dialumene species exhibit redox reversibility and diverse reactivity, opening new avenues in organometallic chemistry.
Area of Science:
- Organometallic Chemistry
- Main Group Chemistry
- Redox Chemistry
Background:
- Alkenes readily form radical cations and dications upon oxidation, with established applications.
- Dialumenes, aluminum analogues of alkenes, were theoretically predicted to form similar charged species.
- Previous attempts to synthesize dialumene cations were unsuccessful due to aluminum's electrophilicity.
Purpose of the Study:
- To synthesize and characterize stable dialumene-derived radical cations and dications.
- To investigate the redox behavior and reactivity of these novel aluminum species.
Main Methods:
- Synthesis of aluminum complexes featuring bulky silyl substituents and electron-donating carbene ligands.
- Electrochemical studies to induce and analyze oxidation states.
- Spectroscopic characterization of neutral, radical cationic, and dicationic forms.
- Reactivity studies of the dicationic species in Lewis acid catalysis, deoxygenation, and homologation reactions.
Main Results:
- Successful synthesis of stable aluminum-centered radical cation and dication.
- Demonstration of redox reversibility between neutral, radical cationic, and dicationic states.
- The dication exhibited Lewis acidity and mediated deoxygenation and isocyanide homologation reactions.
Conclusions:
- Stable dialumene radical cations and dications can be synthesized using sterically demanding substituents and electron-donating ligands.
- These aluminum species form a redox-reversible system, expanding the known chemistry of main group elements.
- The dialumene dication displays versatile reactivity, highlighting potential applications in catalysis and synthesis.
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