Q.What happens when benzene diazonium chloride is heated with water?
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Start your 14-day free trial to unlock the full solution →Benzene diazonium chloride undergoes hydrolysis when heated with water, replacing the diazonium group () with a hydroxyl group () to give phenol as the major product, along with nitrogen gas and HCl.
This is a classic example of nucleophilic aromatic substitution — but not the usual kind. The diazonium group is an exceptional leaving group because it is extremely stable as (nitrogen gas). Once you heat the solution, the bubbles off, and the reaction becomes irreversible. Water acts as the nucleophile, attacking the carbocation-like intermediate that forms after leaves.
Let’s walk through the mechanism and the reasoning step by step.
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The diazonium group is a superb leaving group.
In benzene diazonium chloride (), the group is attached to the ring. The molecule that would form upon departure is incredibly stable (triple bond, inert gas configuration). This makes the bond very weak and easy to break — far easier than a or bond in ordinary aryl halides.
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Heating provides the activation energy.
At room temperature, the diazonium salt is stable in cold acidic solution. But when you heat it (typically around 50–60 °C or higher), the bond breaks heterolytically. The molecule leaves as a gas, and the benzene ring is left with a positive charge — a phenyl cation ().
Watch outA phenyl cation is not a stable carbocation — it’s a very high-energy, short-lived intermediate. The reaction is driven forward by the extreme stability of the leaving group, not by the stability of the cation.
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Water attacks the phenyl cation.
The phenyl cation is highly electrophilic. Water (a weak nucleophile) attacks the positively charged carbon, forming a protonated phenol intermediate:
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Deprotonation gives phenol.
The oxonium ion () quickly loses a proton to water (or to any base present), yielding neutral phenol:
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