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18.7 : Electrophilic Aromatic Substitution: Nitration of Benzene

The nitration of benzene is an example of an electrophilic aromatic substitution reaction. It involves the formation of a very powerful electrophile, the nitronium ion, which is linear in shape. The reaction occurs through the interaction of two strong acids, sulfuric and nitric acid.

Figure1

Sulfuric acid is stronger and protonates the nitric acid on the hydroxyl group, followed by loss of water molecule, generating the nitronium ion.

Figure2

The nitronium ion acts as an electrophile that reacts with benzene to form a resonance-stabilized arenium ion. The arenium ion then loses its proton to a Lewis base forming nitrobenzene.

Figure3

The resulting nitro group can be reduced to a primary amino group. Reduction is achieved either by hydrogenation with a transition metal catalyst such as nickel, palladium, or platinum under mild conditions or upon treatment with metals in aqueous acid. Iron, zinc, and tin in dilute HCl are widely used reducing agents. However, ammonium ion is obtained as a salt under acidic conditions, which is then treated with a base such as sodium hydroxide to liberate the free amine.

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Electrophilic Aromatic SubstitutionNitration Of BenzeneNitronium IonSulfuric AcidNitric AcidArenium IonNitrobenzeneReductionHydrogenationTransition Metal CatalystIronZincTinAmmonium IonPrimary Amino Group

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18.7 : Electrophilic Aromatic Substitution: Nitration of Benzene

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18.1 : Spectroscopie RMN des dérivés du benzène

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18.2 : Réactions en position benzylique : oxydation et réduction

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18.3 : Réactions en position benzylique : halogénation

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18.4 : Substitution aromatique électrophile : aperçu

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18.5 : Substitution aromatique électrophile : chloration et bromation du benzène

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18.6 : Substitution aromatique électrophile : fluoration et iodation du benzène

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18.8 : Substitution aromatique électrophile : sulfonation du benzène

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18.9 : Substitution aromatique électrophile : l’alkylation du benzène par Friedel-Crafts

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18.10 : Substitution aromatique électrophile : acylation du benzène par Friedel-Crafts

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18.11 : Limites des réactions de Friedel-Crafts

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18.12 : Effet directeur des substituants : groupes ortho-para-directeurs

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18.13 : Effet directeur des substituants : groupes méta-directeurs

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18.14 : Activateurs ortho-para-directeurs : –CH3, –OH, –&NoBreak ;NH2, –OCH3

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18.15 : Désactivateurs ortho-para-directeurs : Halogènes

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