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Updated: Aug 2, 2026

Synthesis of Hypervalent Iodonium Alkynyl Triflates for the Application of Generating Cyanocarbenes
Published on: September 8, 2013
Synthesis, structure, and reaction of 1-alkynyl(aryl)-lambda3-bromanes
Masahito Ochiai1, Yoshio Nishi, Satoru Goto
1Faculty of Pharmaceutical Sciences, University of Tokushima, 1-78 Shomachi, Tokushima 770-8505, Japan. mochiai@ph.tokushima-u.ac.jp
New hypervalent 1-alkynyl(aryl)-lambda3-bromanes were synthesized and characterized. These compounds act as electron-deficient Michael acceptors, undergoing tandem Michael-carbene rearrangements to yield alkynyl sulfonates.
Area of Science:
- Organobromine chemistry
- Hypervalent iodine and bromine compounds
- Synthetic organic chemistry
Background:
- Hypervalent bromine compounds are versatile synthetic intermediates.
- Alkynyl substituents introduce unique electronic properties.
- Understanding hypervalent bonding is crucial for novel reactivity.
Purpose of the Study:
- To report the first synthesis and characterization of hypervalent 1-alkynyl(aryl)-lambda3-bromanes.
- To investigate the reactivity of these novel hypervalent bromine compounds.
- To explore their potential as electron-deficient Michael acceptors.
Main Methods:
- Boron trifluoride (BF3)-catalyzed ligand exchange reactions.
- Synthesis using alkynyl(trimethyl)stannanes.
- Characterization by 13C NMR spectroscopy and single-crystal X-ray diffraction.
Main Results:
- Successful synthesis of 1-alkynyl(aryl)-lambda3-bromanes in good yields.
- Selective synthesis of silylethynyl-lambda3-bromane.
- Structural elucidation of tert-butylethynylbromane via X-ray crystallography.
- Demonstration of Michael acceptor behavior and tandem Michael-carbene rearrangement.
Conclusions:
- Hypervalent 1-alkynyl(aryl)-lambda3-bromanes are accessible and stable compounds.
- These compounds exhibit unique reactivity as electron-deficient Michael acceptors.
- Tandem reactions provide a pathway to novel alkynyl sulfonate derivatives.
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