Copper-catalyzed coupling of hydroxylamines with aryl iodides
Kerri L Jones1, Achim Porzelle, Adrian Hall
1School of Chemistry, Main Building, Cardiff University, Park Place, Cardiff, CF10 3AT, United Kingdom.
This study introduces an efficient copper-catalyzed method for N-arylation of hydroxylamines using aryl iodides. The reaction provides good to excellent yields for diverse functionalized hydroxylamines and aryl partners.
Area of Science:
- Organic Chemistry
- Catalysis
- Synthetic Methodology
Background:
- Hydroxylamine derivatives are important synthetic intermediates.
- Efficient methods for N-arylation are crucial for accessing complex molecules.
Purpose of the Study:
- To develop an efficient copper-catalyzed N-arylation of hydroxylamines with aryl iodides.
- To explore the scope and limitations of the developed method.
Main Methods:
- Copper-catalyzed coupling reaction.
- Utilized aryl iodides as coupling partners.
- Employed various N- and O-functionalized hydroxylamines.
Main Results:
- Achieved good to excellent yields for a broad range of substrates.
- Demonstrated the transformation of diverse N- and O-functionalized hydroxylamines.
- Developed selective deprotection methods for N- and O-substituents.
Conclusions:
- The described method offers an efficient route to N-arylated hydroxylamines.
- The developed methodology is versatile and broadly applicable in organic synthesis.
- Selective deprotection strategies enable further functionalization of the products.
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