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Chemistry · Ch 9 — Amines

Reaction with Nitrous Acid

9.6.5

Reaction with Nitrous Acid

Reaction with Nitrous Acid

Nitrous acid (HNO2\text{HNO}_2) is too unstable to be stored, so it is always generated in situ, right inside the reaction mixture, by treating sodium nitrite with a mineral acid such as hydrochloric acid:

NaNO2+HCl⟶HNO2+NaCl\text{NaNO}_2 + \text{HCl} \longrightarrow \text{HNO}_2 + \text{NaCl}

What happens next depends entirely on which class of amine is present — primary, secondary, or tertiary — and, for primary amines, on whether the amine is aliphatic or aromatic. This makes the nitrous-acid reaction one of the most reliable ways to characterise and distinguish amines, and it is also the doorway into diazonium chemistry (taken up in the next section).

Primary Aliphatic Amines

A primary aliphatic amine reacts with nitrous acid to form an alkyl diazonium salt. This intermediate is extremely unstable even at room temperature and decomposes essentially the moment it forms, releasing nitrogen gas quantitatively:

R–NH2+HNO2→NaNO2+HCl[R–N+2Cl−]→H2OROH+N2+HCl\text{R–NH}_2 + \text{HNO}_2 \xrightarrow{\text{NaNO}_2 + \text{HCl}} \big[\text{R–}\overset{+}{\text{N}}_2\overset{-}{\text{Cl}}\big] \xrightarrow{\text{H}_2\text{O}} \text{ROH} + \text{N}_2 + \text{HCl}

The alkyl diazonium salt is hydrolysed by water almost as fast as it forms, giving a primary alcohol as the chief product, together with a brisk, quantitative evolution of nitrogen gas. In practice the alcohol is often accompanied by an alkene and an alkyl halide as minor side products (via competing elimination and substitution of the highly reactive diazonium leaving group), so the reaction is not a clean way to make a specific alcohol. Its real value is the quantitative evolution of N2\text{N}_2: because exactly one mole of nitrogen gas is released per mole of primary amino group, this reaction is used to estimate the number of free amino groups in a sample — for instance in the analysis of amino acids and proteins.

Primary Aromatic Amines

A primary aromatic amine, such as aniline, also reacts with nitrous acid to give a diazonium salt, but with one crucial difference: the arenediazonium salt is comparatively stable, provided the temperature is kept low (273–278 K, i.e., ice-cold conditions).

C6H5–NH2Aniline→273 – 278 KNaNO2+2HClC6H5–N+2Cl−Benzenediazoniumchloride+NaCl+2H2O\underset{\text{Aniline}}{\text{C}_6\text{H}_5\text{–NH}_2} \xrightarrow[273\ \text{–}\ 278\ \text{K}]{\text{NaNO}_2 + 2\text{HCl}} \underset{\text{chloride}}{\underset{\text{Benzenediazonium}}{\text{C}_6\text{H}_5\text{–}\overset{+}{\text{N}}_2\overset{-}{\text{Cl}}}} + \text{NaCl} + 2\text{H}_2\text{O}

This controlled, low-temperature formation of a stable-for-a-while arenediazonium salt from a primary aromatic amine is called diazotisation. Benzenediazonium chloride, the product shown above, does not survive being warmed to room temperature — but at ice-bath temperature it is stable enough to be used directly, without isolation, as the starting material for the whole family of diazonium-salt reactions (dyes, nitriles, phenols, azo-coupling, and more) that follow in the next section.

Important

The nitrous-acid outcome depends entirely on the class and type of amine — the single most tested distinction in this chapter.

Amine classProduct with HNO2\text{HNO}_2Key observation
Primary aliphatic (R–NH2\text{R–NH}_2)Alkyl diazonium saltUnstable even at room temperature; decomposes at once, releasing N2\text{N}_2 gas quantitatively, alongside alcohol/alkene/alkyl halide
Primary aromatic (Ar–NH2\text{Ar–NH}_2)Arenediazonium saltStable only at low temperature (273–278 K); the basis of diazotisation and all downstream diazonium chemistry
Secondary (aliphatic or aromatic)N-NitrosamineYellow, oily liquid; no nitrogen gas evolved
Tertiary aliphaticUnstable N-nitroso ammonium saltNo N–H is available to lose, so only a simple (unstable) salt forms
Tertiary aromaticRing-nitrosated product (predominantly para)The activated benzene ring itself is attacked; the nitroso group enters mainly at the para position
Secondary and Tertiary Amines

Secondary and tertiary amines react with nitrous acid quite differently from primary amines, and neither pathway evolves nitrogen gas.

A secondary amine, whether aliphatic or aromatic, has one N–H hydrogen left on nitrogen. The nitrogen attacks the nitrosating species and that remaining hydrogen is lost, giving an N-nitrosamine — a yellow, oily liquid:

R2NH+HNO2⟶R2N–N=O+H2O\text{R}_2\text{NH} + \text{HNO}_2 \longrightarrow \text{R}_2\text{N–N=O} + \text{H}_2\text{O}

A tertiary amine has no N–H hydrogen at all, so it cannot be nitrosated at nitrogen the way primary and secondary amines are. What happens next depends on whether the tertiary amine is aliphatic or aromatic: …