The use of N2O5 and a Fe(III) catalyst for the nitration of aromatic rings is described. This methodology is compatible with most functional groups and results in near quantitative yields in 4 min. The reaction conditions are non-oxidising: benzaldehyde and benzyl alcohols are readily nitrated with little or no oxidation (<4%) occurring. The addition of the iron catalyst activates the system to such an extent that nitration of an activated aromatic ring, such as toluene, occurs quantitatively at −100°C. This high activity allows compounds with sensitive functional groups such as alkenes to be smoothly nitrated
Nitration of organic compounds has long been a very active and rewarding area of research and is the...
Novel nitration systems comprising nitric acid, trifluoroacetic anhydride and zeolite Hβ, with or wi...
Novel nitration systems comprising nitric acid, trifluoroacetic anhydride and zeolite Hβ, with or wi...
The use of N2O5 and a Fe(III) catalyst for the nitration of aromatic rings is described. This method...
Simple aromatic compounds such as benzene, alkylbenzenes, halogenobenzenes, and some disubstituted b...
Simple aromatic compounds such as benzene, alkylbenzenes, halogenobenzenes, and some disubstituted b...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
According to the invention there is provided a method for the nitration of an aromatic compound incl...
According to the invention there is provided a method for the nitration of an aromatic compound incl...
Novel nitration systems comprising nitric acid, trifluoroacetic anhydride and zeolite Hβ, with or wi...
Nitration of organic compounds has long been a very active and rewarding area of research and is the...
Novel nitration systems comprising nitric acid, trifluoroacetic anhydride and zeolite Hβ, with or wi...
Novel nitration systems comprising nitric acid, trifluoroacetic anhydride and zeolite Hβ, with or wi...
The use of N2O5 and a Fe(III) catalyst for the nitration of aromatic rings is described. This method...
Simple aromatic compounds such as benzene, alkylbenzenes, halogenobenzenes, and some disubstituted b...
Simple aromatic compounds such as benzene, alkylbenzenes, halogenobenzenes, and some disubstituted b...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
Simple aromatic compounds such as benzene, alkylbenzenes and halogenobenzenes are nitrated in quanti...
According to the invention there is provided a method for the nitration of an aromatic compound incl...
According to the invention there is provided a method for the nitration of an aromatic compound incl...
Novel nitration systems comprising nitric acid, trifluoroacetic anhydride and zeolite Hβ, with or wi...
Nitration of organic compounds has long been a very active and rewarding area of research and is the...
Novel nitration systems comprising nitric acid, trifluoroacetic anhydride and zeolite Hβ, with or wi...
Novel nitration systems comprising nitric acid, trifluoroacetic anhydride and zeolite Hβ, with or wi...