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Isolable ArInH2: Double Hydroindation Agent
Adam Hochmal1, Zdeňka Růžičková1, Aleš Růžička1
1Department of General and Inorganic Chemistry, Faculty of Chemical Technology, University of Pardubice, Pardubice, Czech Republic.
A novel indium hydride reagent, indane ArInH₂, was synthesized and demonstrated to be a versatile reducing agent. It effectively reacts with dichalcogenides, alcohols, aldehydes, and ketenes, showcasing its broad reactivity in organic synthesis.
Area of Science:
- Organometallic Chemistry
- Main Group Chemistry
- Synthetic Inorganic Chemistry
Background:
- Indium complexes with P,C,P-pincer ligands are valuable in catalysis and synthesis.
- Development of new reagents with multiple reactive sites is crucial for efficient chemical transformations.
- Hydroindation reactions offer a pathway for C-H bond functionalization.
Purpose of the Study:
- To synthesize and characterize a novel indium dihydride complex.
- To explore the reactivity of the synthesized indium dihydride as a reducing agent and hydride source.
- To investigate its potential as a double hydroindation agent.
Main Methods:
- Synthesis of indium(III) chloride precursor.
- Reaction with potassium triethylborohydride to yield the indium dihydride.
- Characterization of the product by X-ray crystallography.
- Exploration of reactivity through reactions with dichalcogenides, alcohols, aldehydes, and ketene.
Main Results:
- Crystalline monomeric indane ArInH₂ (1) bearing two terminal In─H bonds was successfully synthesized.
- Indane 1 acted as a reductant for dichalcogenides, yielding ArIn(EPh)₂ (2E).
- It served as a hydride source for alcohols, producing mono- or disubstituted indium phenolates (3, 4).
- Indane 1 demonstrated unprecedented double hydroindation reactivity with aldehydes and ketene, forming ArIn(4-R-C₆H₄CH₂O)₂ (5R) and ArIn(Ph₂C═CH─O)₂ (6).
Conclusions:
- The synthesized indium dihydride is a versatile reagent with diverse applications in reduction and functionalization.
- Its ability to perform double hydroindation reactions opens new avenues in synthetic chemistry.
- The P,C,P-pincer ligand facilitates the stability and reactivity of the indium hydride species.
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