Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganese complexes. The reactions are directed by torsional effects leading to site-selective oxidation of cis-1,4-, trans-1,3-, and cis-1,2-cyclohexanediamides. The corresponding diastereoisomers are unreactive under the same conditions. Competitive oxidation of cis−trans mixtures of 4-substituted N-cyclohexylamides leads to quantitative conversion of the cis-isomers, allowing isolation and successive conversion of the trans-isomers into densely functionalized oxidation products with excellent site selectivity and good enantioselectivity
The oxidation of aliphatic C-H bonds is a very powerful reaction because it allows the functionaliza...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C–H oxidation with H<sub>...
Methods for selective oxidation of aliphatic C−H bonds are called on to revolutionize organic synthe...
Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganes...
Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganes...
Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganes...
Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganes...
Substituted <i>N</i>-cyclohexyl amides undergo aliphatic C–H bond oxidation with H<sub>2</sub>O<sub>...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
The oxidation of aliphatic C-H bonds is a very powerful reaction because it allows the functionaliza...
The oxidation of aliphatic C-H bonds is a very powerful reaction because it allows the functionaliza...
The oxidation of aliphatic C-H bonds is a very powerful reaction because it allows the functionaliza...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C–H oxidation with H<sub>...
Methods for selective oxidation of aliphatic C−H bonds are called on to revolutionize organic synthe...
Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganes...
Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganes...
Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganes...
Substituted N-cyclohexyl amides undergo aliphatic C−H bond oxidation with H2O2 catalyzed by manganes...
Substituted <i>N</i>-cyclohexyl amides undergo aliphatic C–H bond oxidation with H<sub>2</sub>O<sub>...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C−H oxidation with H2O2 c...
The oxidation of aliphatic C-H bonds is a very powerful reaction because it allows the functionaliza...
The oxidation of aliphatic C-H bonds is a very powerful reaction because it allows the functionaliza...
The oxidation of aliphatic C-H bonds is a very powerful reaction because it allows the functionaliza...
Monosubstituted cycloalkanes undergo regio- and enantioselective aliphatic C–H oxidation with H<sub>...
Methods for selective oxidation of aliphatic C−H bonds are called on to revolutionize organic synthe...