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📋 Table of Contents

9.1 Structure of Amines

Amines are derivatives of ammonia (NH₃) obtained by replacement of one, two or all three hydrogen atoms by alkyl and/or aryl groups. They occur widely in nature — in proteins, vitamins, alkaloids, and hormones — and are used in synthesis of dyes, drugs, and polymers.

Definition

Amines: Organic compounds derived from ammonia by replacing one or more H atoms with alkyl/aryl groups. The nitrogen atom retains an unshared pair of electrons, which makes amines basic and nucleophilic.

Hybridisation & Geometry

Like ammonia, the nitrogen atom in amines is sp³ hybridised. Three of its sp³ orbitals overlap with orbitals of C or H, while the fourth sp³ orbital holds the lone pair. This lone pair causes bond-angle compression below the tetrahedral ideal of 109.5°.

N lone pair CH₃ CH₃ CH₃ 108°
Pyramidal geometry of trimethylamine — N is sp³ hybridised; lone pair occupies the 4th orbital, compressing the C–N–C bond angle to 108°
Key Rules
  • Nitrogen in amines: trivalent, sp³ hybridised, pyramidal geometry
  • Bond angle C–N–C or C–N–H is less than 109.5° due to lone pair repulsion
  • Trimethylamine: C–N–C = 108°
  • The lone pair makes amines Lewis bases and nucleophiles
🧪
Fig. 9.1 — Pyramidal Shape of Trimethylamine
NCERT p.260
3D orbital diagram showing the four sp³ hybrid orbitals of nitrogen in trimethylamine — three overlapping with CH₃ groups and one holding the unshared electron pair pointing upward.
📌 Image Source
NCERT Chemistry Class 12, Chapter 9, Fig. 9.1, Page 260. Replace this placeholder with the actual NCERT figure once image files are available.

9.2 Classification of Amines

Amines are classified as primary (1°), secondary (2°), and tertiary (3°) based on the number of H atoms in NH₃ replaced by alkyl/aryl groups.

TypeH Atoms ReplacedGeneral FormulaExampleName
Primary (1°)1 RNH₂ or ArNH₂ CH₃NH₂Methylamine
Secondary (2°)2 R₂NH or RNHR′ CH₃NHCH₃Dimethylamine
Tertiary (3°)3 R₃N (CH₃)₃NTrimethylamine
Quaternary Ammonium Salt R₄N⁺ X⁻ (CH₃)₄N⁺Cl⁻Tetramethylammonium chloride
NH₃ Ammonia +R RNH₂ Primary (1°) +R′ RNHR′ Secondary (2°) +R″ RNR′R″ Tertiary (3°) +R‴ R₄N⁺X⁻ Quat. Salt
Stepwise replacement of H atoms in NH₃ by alkyl/aryl groups yields 1°, 2°, 3° amines, and finally quaternary ammonium salt
⚠️ Common Confusion

In amines, 1°, 2°, 3° refers to the number of carbon groups attached to N, NOT to the type of carbon. This is the opposite of how we classify alcohols (where it refers to the carbon bearing –OH). A tertiary amine has three alkyl groups on N.

Amines are called 'simple' when all alkyl/aryl groups are the same and 'mixed' when groups are different.


9.3 Nomenclature of Amines

Common System
  • Primary amines: alkyl group name + "amine" as one word
  • E.g., CH₃NH₂ = methylamine
  • For 2° and 3° with same groups: di/tri prefix
  • E.g., (CH₃)₂NH = dimethylamine
  • Simplest arylamine: C₆H₅NH₂ = aniline
IUPAC System
  • Primary amines: replace 'e' of alkane by 'amine' → alkanamines
  • E.g., CH₃NH₂ = methanamine
  • Multiple –NH₂ groups: di, tri prefix + retain 'e' of alkane
  • E.g., H₂N–CH₂–CH₂–NH₂ = ethane-1,2-diamine
  • For 2°/3°: use locant N for substituent on N
  • Arylamines: suffix 'e' of arene → 'amine' → benzenamine
IUPAC Rule for 2° and 3° Amines

Identify the longest chain containing N as parent. Other groups on N are named as N-substituents.

CH₃–NH–CH₂CH₃  →  N-methylethanamine
(CH₃CH₂)₃N  →  N,N-diethylethanamine

Nomenclature Table

StructureCommon NameIUPAC NameType
CH₃–CH₂–NH₂EthylamineEthanamine
CH₃–CH₂–CH₂–NH₂n-PropylaminePropan-1-amine
(CH₃)₂CHNH₂IsopropylaminePropan-2-amine
CH₃–N(H)–CH₂CH₃EthylmethylamineN-Methylethanamine
(CH₃)₃NTrimethylamineN,N-Dimethylmethanamine
NH₂–(CH₂)₆–NH₂HexamethylenediamineHexane-1,6-diamine1°,1°
C₆H₅–NH₂AnilineAniline / Benzenamine1° aryl
2-CH₃–C₆H₄–NH₂o-Toluidine2-Methylaniline1° aryl
4-Br–C₆H₄–NH₂p-Bromoaniline4-Bromobenzenamine1° aryl
C₆H₅–N(CH₃)₂N,N-DimethylanilineN,N-Dimethylbenzenamine3° aryl

Key Arylamine Structures

Aniline
NH₂
C₆H₅NH₂
Benzenamine · 1° aryl
N,N-Dimethylaniline
N(CH₃)₂
C₆H₅N(CH₃)₂
3° aryl amine
o-Toluidine
NH₂ CH₃ 2-position
2-Methylaniline
p-Bromoaniline
NH₂ Br 4-position
4-Bromobenzenamine

9.4 Preparation of Amines

1. Reduction of Nitro Compounds

Nitro compounds are reduced to primary amines using:

(i) Aromatic — Catalytic:
C₆H₅–NO₂  +  3H₂  —H₂/Pd, Ethanol→  C₆H₅–NH₂  +  2H₂O

(ii) Aromatic — Chemical:
C₆H₅–NO₂  —Sn+HCl or Fe+HCl→  C₆H₅–NH₂

(iii) Aliphatic:
RNO₂  +  6[H]  —Ni/H₂→  RNH₂  +  2H₂O

2. Ammonolysis of Alkyl Halides

An alkyl or benzyl halide reacts with ethanolic NH₃ in a sealed tube at 373 K — the C–X bond is cleaved nucleophilically by NH₃ (ammonolysis). The primary amine formed can react further to give 2°, 3° amines and finally quaternary ammonium salts.

NH₃ + R–X  →  R–NH₃⁺ X⁻  —–HX (base)→  R–NH₂ (1°)
R–NH₂ + R–X  →  R₂–NH₂⁺ X⁻  →  R₂NH (2°)
R₂NH + R–X  →  R₃–NH⁺ X⁻  →  R₃N (3°)
R₃N + R–X  →  R₄N⁺ X⁻ (Quaternary ammonium salt)
Limitation

Ammonolysis gives a mixture of 1°, 2°, 3° amines and quaternary salt. To obtain 1° amine as major product, use large excess of NH₃.

Reactivity order of halides: RI > RBr > RCl

3. Reduction of Nitriles

Nitriles (R–C≡N) are reduced by LiAlH₄ or catalytic hydrogenation to give primary amines. This is used for ascent of amine series — the product has one more carbon than the starting amine.

R–C≡N  +  4[H]  —LiAlH₄ / H₂(Ni)→  R–CH₂–NH₂
E.g., CH₃CN → CH₃CH₂NH₂ (ethanenitrile → ethanamine)

4. Reduction of Amides

Amides (RCONH₂) are reduced by LiAlH₄ to give amines with the same number of carbons.

R–CO–NH₂  —(i) LiAlH₄   (ii) H₂O→  R–CH₂–NH₂

5. Gabriel Phthalimide Synthesis

Used specifically for preparation of pure primary amines. Steps:

  1. Phthalimide + ethanolic KOH → potassium phthalimide (K salt)
  2. K phthalimide + R–X (alkyl halide) → N-alkylphthalimide
  3. N-alkylphthalimide + NaOH(aq) or H₂O₂/NaOH → primary amine + sodium phthalate
🧬
Gabriel Phthalimide Synthesis — Full Mechanism
NCERT p.264
Step-by-step reaction scheme: Phthalimide → K-phthalimide (KOH) → N-alkylphthalimide (R–X) → primary amine (NaOH hydrolysis), showing all intermediates and products.
📌 Image Source
NCERT Chemistry Class 12, Chapter 9, Page 264. Replace with the actual NCERT diagram when image files are available.
⚠️ Why Gabriel can't prepare ArNH₂

Aryl halides (Ar–X) do not undergo nucleophilic substitution with the phthalimide anion because the C–X bond in aryl halides is very strong (resonance stabilisation). Hence, aromatic primary amines cannot be prepared by this method.

6. Hoffmann Bromamide Degradation (Hoffmann Rearrangement)

Amides react with Br₂ in aqueous/ethanolic NaOH to give primary amines. The amine formed has one carbon less than the starting amide — a migration of the alkyl/aryl group from carbonyl C to N occurs.

R–CO–NH₂  +  Br₂  +  4NaOH  →  R–NH₂  +  Na₂CO₃  +  2NaBr  +  2H₂O
Amide (n carbons) → Amine (n–1 carbons)
E.g., Butanamide → Propan-1-amine
KEY CONCEPT

Summary: Preparation Methods

  • 1Reduction of nitro compounds → RNH₂ (1°) via H₂/Ni or Fe+HCl
  • 2Ammonolysis of alkyl halides → mixture; 1° major with excess NH₃
  • 3Reduction of nitriles → RCH₂NH₂ (one carbon more) via LiAlH₄
  • 4Reduction of amides → RCH₂NH₂ (same carbons) via LiAlH₄
  • 5Gabriel synthesis → pure 1° alkyl amines only (not ArNH₂)
  • 6Hoffmann rearrangement → pure 1° amine with one carbon less

9.5 Physical Properties of Amines

State, Odour & Colour

Hydrogen Bonding & Boiling Points

Primary and secondary amines can form intermolecular N–H···N hydrogen bonds. The N–H bond is less polar than O–H (N electronegativity = 3.0 vs O = 3.5), so H-bonds in amines are weaker than those in alcohols.

Boiling Point Order

For isomeric amines of the same molecular formula:

1° Aminemost H-bonds
>
2° Aminefewer H-bonds
>
3° Amineno N–H, no H-bond

But all amines boil lower than alcohols of similar molar mass because N–H···N bonds are weaker than O–H···O bonds.

Solubility in Water

CompoundMolar Massb.p. (K)Remarks
n-C₄H₉NH₂ (1° amine)73350.8Highest b.p. — 2 N–H available
(C₂H₅)₂NH (2° amine)73329.31 N–H available
C₂H₅N(CH₃)₂ (3° amine)73310.5No N–H; no H-bonding
C₂H₅CH(CH₃)₂ (alkane)72300.8No H-bonding at all
n-C₄H₉OH (alcohol)74390.3Highest — strong O–H···O bonds
🔗
Fig. 9.2 — Intermolecular H-bonding in Primary Amines
NCERT p.266
Diagram showing intermolecular N–H···N hydrogen bonds between primary amine molecules (R–NH₂), illustrating the zigzag chain of H-bonds and explaining why 1° amines have higher boiling points than 2° and 3° amines.
📌 Image Source
NCERT Chemistry Class 12, Chapter 9, Fig. 9.2, Page 266. Replace with actual NCERT figure when image files are available.

9.6 Chemical Reactions of Amines

Amines are reactive due to: (a) the lone pair on N → Lewis base / nucleophile behaviour, and (b) the N–H bonds → allowing acylation, sulphonylation, etc.

1. Basic Character of Amines

Amines react with acids to form ammonium salts:

R–NH₂  +  HX  ⇌  R–NH₃⁺ X⁻  (salt, soluble in water)
C₆H₅–NH₂  +  HCl  ⇌  C₆H₅–NH₃⁺ Cl⁻  (anilinium chloride)
R–NH₃⁺ X⁻  +  NaOH  →  R–NH₂  +  H₂O  +  NaX  (amine regenerated)
$$K_b = \frac{[\text{R-NH}_3^+][\text{OH}^-]}{[\text{R-NH}_2]} \qquad \text{pK}_b = -\log K_b$$

Larger K_b (smaller pK_b) → stronger base

Structure–Basicity Relationships

Alkylamines vs. Ammonia

Alkyl groups have a +I (inductive) effect — they push electrons towards N, increasing availability of the lone pair for protonation. Moreover, the substituted ammonium ion formed is stabilised by +I dispersal of the positive charge.

In gas phase: Basicity order follows inductive effect perfectly:

3° > 2° > 1° > NH₃

In aqueous phase: The trend is disturbed by solvation effect and steric hindrance:

  • 1° cation has 3 N–H bonds → best H-bonded/solvated by water → most stabilised
  • 3° cation has only 1 N–H → least solvated → less stabilised than expected
  • Net result: secondary amines are usually the strongest bases in aqueous solution
Methyl-substituted (aqueous): (CH₃)₂NH > CH₃NH₂ > (CH₃)₃N > NH₃
Ethyl-substituted (aqueous): (C₂H₅)₂NH > (C₂H₅)₃N > C₂H₅NH₂ > NH₃
Arylamines vs. Ammonia

In aniline, the –NH₂ group is directly attached to benzene ring. The lone pair on N is in conjugation with the π system of the ring → delocalised → less available for protonation.

Aniline has 5 resonating structures (delocalized lone pair). Anilinium ion (protonated) has only 2 Kekulé structures. More resonating structures = more stability → aniline is more stable → resists protonation → weaker base.

∴ Arylamines are much weaker bases than alkylamines or NH₃ (pKb aniline ≈ 9.38 vs NH₃ ≈ 4.75)

🔄
Resonance Structures of Aniline (5 structures) & Anilinium Ion (2 structures)
NCERT p.269
Five resonating structures of aniline showing electron delocalisation of N lone pair into the benzene ring (ortho and para positions carry negative charge). Two Kekulé structures of anilinium ion (only ring resonance). Demonstrates why aniline is a weaker base.
📌 Image Source
NCERT Chemistry Class 12, Chapter 9, Page 269. Resonance structures of aniline and anilinium ion.
AminepKbReason
Methanamine (CH₃NH₂)3.38+I of methyl → strong base
N-Methylmethanamine ((CH₃)₂NH)3.27More +I → stronger (aqueous)
N,N-Dimethylmethanamine ((CH₃)₃N)4.22Steric + poor solvation → weaker
Ethanamine (C₂H₅NH₂)3.29+I of ethyl
N-Ethylethanamine ((C₂H₅)₂NH)3.00Strongest in ethyl series (aqueous)
N,N-Diethylethanamine ((C₂H₅)₃N)3.25Steric hindrance effect
Benzenamine (C₆H₅NH₂)9.38Resonance delocalisation → very weak
Phenylmethanamine (C₆H₅CH₂NH₂)4.70–CH₂– insulates N from ring
N-Methylaniline9.30Still aryl amine; weak base
N,N-Dimethylaniline8.92Slightly stronger than aniline

2. Alkylation

Amines react with alkyl halides (R–X) in nucleophilic substitution to give successively higher amines and finally quaternary ammonium salts (same mechanism as ammonolysis — see Section 9.4).

3. Acylation

Primary and secondary amines react with acid chlorides, acid anhydrides, or esters to give amides. This is a nucleophilic substitution. A stronger base (pyridine) is added to remove the HCl formed and shift equilibrium to the right.

With acid chloride:
C₂H₅–NH₂  +  CH₃COCl  —Base→  C₂H₅–NH–CO–CH₃  +  HCl
               N-Ethylethanamide

With acetic anhydride:
C₆H₅–NH₂  +  (CH₃CO)₂O  →  C₆H₅–NH–CO–CH₃  +  CH₃COOH
               N-Phenylethanamide (Acetanilide)

Benzoylation (with C₆H₅COCl):
CH₃NH₂  +  C₆H₅COCl  →  CH₃–NH–CO–C₆H₅  +  HCl
               N-Methylbenzamide

4. Carbylamine Reaction (Isocyanide Test)

Primary amines only (both aliphatic and aromatic) react with CHCl₃ and ethanolic KOH on heating to give isocyanides (carbylamines) — foul smelling substances.

Secondary and tertiary amines do NOT show this reaction. Used as a test for primary amines.

R–NH₂  +  CHCl₃  +  3KOH  —Heat→  R–N≡C  +  3KCl  +  3H₂O
(R–NC = isocyanide / carbylamine — foul smell is the positive test)

5. Reaction with Nitrous Acid (HNO₂)

HNO₂ is generated in situ from NaNO₂ + dilute HCl. The three classes of amines react differently:

Primary Aliphatic Amine + HNO₂

Forms aliphatic diazonium salts (unstable) → immediately liberate N₂ gas quantitatively and give alcohols.

R–NH₂ + HNO₂  →  [R–N₂⁺Cl⁻]  —H₂O→  ROH + N₂↑ + HCl

N₂ evolution used to estimate amino acids and proteins.

Primary Aromatic Amine + HNO₂

At 273–278 K, forms stable arenediazonium salts (diazonium salts).

C₆H₅–NH₂ + NaNO₂ + 2HCl  —273-278 K→  C₆H₅–N₂⁺ Cl⁻ + NaCl + 2H₂O

Very important for synthesis — covered in Section 9.7–9.9.

Secondary & Tertiary Amines with HNO₂

2° amines: form N-nitrosamines (R₂N–N=O) — yellow oily substances, many carcinogenic.

3° aliphatic amines: form soluble salts only (no N–H to react).

3° aromatic amines (like N,N-dimethylaniline): undergo ring nitrosation at the para position.

6. Reaction with Benzenesulphonyl Chloride (Hinsberg's Test)

Benzenesulphonyl chloride (C₆H₅SO₂Cl, Hinsberg's reagent) distinguishes between 1°, 2°, and 3° amines.

Amine TypeReaction with C₆H₅SO₂ClWith NaOH
1° Amine Forms N-ethylbenzenesulphonamide
C₆H₅SO₂–NHR (has N–H)
Soluble — N–H is acidic due to electron-withdrawing –SO₂– group
2° Amine Forms N,N-disubstituted sulphonamide
C₆H₅SO₂–NR₂ (no N–H)
Insoluble — no acidic H on N
3° Amine Does NOT react with C₆H₅SO₂Cl Remains as such

7. Electrophilic Substitution of Aromatic Amines

The –NH₂ group is a powerful ortho-para director and activating group for electrophilic aromatic substitution. It increases electron density at ortho and para positions through resonance (+M effect).

(a) Bromination

Aniline reacts with bromine water (without catalyst) at room temperature to give a white precipitate of 2,4,6-tribromoaniline (all three positions activated simultaneously).

C₆H₅–NH₂  +  3Br₂  —Br₂/H₂O→  2,4,6-Br₃–C₆H₂–NH₂↓  +  3HBr
White precipitate — confirms aniline; no FeBr₃ catalyst needed

To get monosubstituted product: protect –NH₂ by acetylation → reduce reactivity → brominate → hydrolyse the amide.

Aniline  —(CH₃CO)₂O / Pyridine→  Acetanilide  —Br₂/CH₃COOH→  p-Bromoacetanilide  —OH⁻ or H⁺→  4-Bromoaniline (major)

(b) Nitration of Aniline

Direct nitration gives tarry products + meta derivative (because in strongly acidic HNO₃/H₂SO₄ medium, aniline is protonated → anilinium ion → –NH₃⁺ is a meta director). Products: o- (51%) + p- (47%) + m- (2%).

For pure para-nitroaniline: acetylate first (–NHCOCH₃ is weaker o/p director) → nitrate → hydrolyse.

(c) Sulphonation of Aniline

C₆H₅–NH₂  —H₂SO₄→  C₆H₅–NH₃⁺ HSO₄⁻  —453–473 K, H₂SO₄→  p-H₂N–C₆H₄–SO₃H
Sulphanilic acid — a zwitterion (H₃N⁺–C₆H₄–SO₃⁻); used in azo dye synthesis
Why Aniline Doesn't Undergo Friedel-Crafts?

AlCl₃ (Lewis acid catalyst) forms a complex with N of aniline: C₆H₅NH₂·AlCl₃. This gives N a positive charge, making it a strong deactivating group — the ring is now deactivated for electrophilic substitution.


9.7 Diazonium Salts — Preparation

Definition

Diazonium Salts: Compounds of general formula Ar–N₂⁺ X⁻, where Ar is an aryl group and X⁻ = Cl⁻, Br⁻, HSO₄⁻, BF₄⁻, etc. They are named by suffixing "diazonium" to the parent hydrocarbon name + anion name.

E.g., C₆H₅–N₂⁺ Cl⁻ = benzenediazonium chloride

Diazotisation

The conversion of primary aromatic amines into diazonium salts is called diazotisation.

C₆H₅–NH₂  +  NaNO₂  +  2HCl  —273–278 K→  C₆H₅–N₂⁺ Cl⁻  +  NaCl  +  2H₂O
• Temperature MUST be maintained at 273–278 K (0–5°C) to prevent decomposition of the salt
• NaNO₂ + HCl → HNO₂ (generated in situ)
Why Aryl vs Alkyl Diazonium Salts?
  • Primary aliphatic amines form highly unstable alkyldiazonium salts → immediately decompose to N₂ + alcohol
  • Primary aromatic amines form relatively stable arenediazonium salts at low T (273–278 K) due to resonance stabilisation of Ar–N≡N⁺
  • Arenediazonium salts are not stored — used immediately after preparation
🔄
Resonance Structures of Arenediazonium Ion (Ar–N₂⁺)
NCERT p.274
Four resonating structures of benzenediazonium ion showing delocalisation of the positive charge from the diazo group into the benzene ring — ortho and para positions become electron-deficient. This explains the relative stability of the arenediazonium ion compared to the aliphatic counterpart.
📌 Image Source
NCERT Chemistry Class 12, Chapter 9, Page 274. Resonance structures of arenediazonium ion.

9.8–9.9 Properties & Chemical Reactions of Diazonium Salts

Physical Properties

A. Reactions Involving Displacement of Nitrogen (–N₂⁺ as leaving group)

1. Sandmeyer Reaction

Cl⁻, Br⁻, CN⁻ introduced into benzene ring using Cu(I) catalyst (Cu₂Cl₂ / Cu₂Br₂ / CuCN + KCN):

Ar–N₂⁺ X⁻  —Cu₂Cl₂/HCl→  Ar–Cl + N₂↑
Ar–N₂⁺ X⁻  —Cu₂Br₂/HBr→  Ar–Br + N₂↑
Ar–N₂⁺ X⁻  —CuCN/KCN→  Ar–CN + N₂↑
Yield in Sandmeyer > Gattermann reaction

2. Gattermann Reaction

Cl⁻ or Br⁻ introduced using Cu powder (not Cu(I) salt) with HCl or HBr:

Ar–N₂⁺ X⁻  —Cu/HCl→  Ar–Cl + N₂↑ + CuX
Ar–N₂⁺ X⁻  —Cu/HBr→  Ar–Br + N₂↑ + CuX

3. Replacement by Iodide

Ar–N₂⁺ Cl⁻  +  KI  →  Ar–I + KCl + N₂↑
No Cu catalyst needed; KI alone is sufficient

4. Replacement by Fluoride (Balz-Schiemann Reaction)

Ar–N₂⁺ Cl⁻  +  HBF₄  →  Ar–N₂⁺ BF₄⁻↓  —Δ→  Ar–F + BF₃ + N₂↑
Arene diazonium fluoroborate → pyrolysis → aryl fluoride

5. Replacement by H (Reductive Deamination)

Ar–N₂⁺ Cl⁻  +  H₃PO₂ (hypophosphorous acid) + H₂O  →  Ar–H + N₂↑ + H₃PO₃ + HCl
Ar–N₂⁺ Cl⁻  +  CH₃CH₂OH  →  Ar–H + N₂↑ + CH₃CHO + HCl

6. Replacement by –OH (Hydrolysis)

Ar–N₂⁺ Cl⁻  +  H₂O  —283 K (warm)→  Ar–OH + N₂↑ + HCl
Gives phenol; temperature raised slightly from 273 K

7. Replacement by –NO₂

Ar–N₂⁺ Cl⁻  —HBF₄→  Ar–N₂⁺ BF₄⁻  —NaNO₂/Cu, Δ→  Ar–NO₂ + N₂↑ + NaBF₄

B. Reactions Involving Retention of Diazo Group — Coupling Reactions

Diazonium salts react with electron-rich aromatic compounds (phenols, arylamines) in electrophilic aromatic substitution at the para position. The –N=N– group is retained. Products are azo compounds used as azo dyes.

With phenol (alkaline medium):
C₆H₅–N₂⁺ Cl⁻  +  HO–C₆H₅  —OH⁻→  C₆H₅–N=N–C₆H₄–OH (para) + Cl⁻ + H₂O
p-Hydroxyazobenzene — orange dye

With aniline (acidic medium):
C₆H₅–N₂⁺ Cl⁻  +  H₂N–C₆H₅  —H⁺→  C₆H₅–N=N–C₆H₄–NH₂ (para) + Cl⁻ + H₂O
p-Aminoazobenzene — yellow dye
KEY CONCEPT

Complete Reactions of Diazonium Salts

ReactionReagentProductType
Sandmeyer (Cl)Cu₂Cl₂/HClAr–Cl–N₂ displaced
Sandmeyer (Br)Cu₂Br₂/HBrAr–Br–N₂ displaced
Sandmeyer (CN)CuCN/KCNAr–CN–N₂ displaced
GattermannCu/HCl or Cu/HBrAr–Cl / Ar–Br–N₂ displaced
IodinationKIAr–I–N₂ displaced
Balz-SchiemannHBF₄ → pyrolysisAr–F–N₂ displaced
ReductionH₃PO₂ / C₂H₅OHAr–H–N₂ displaced
HydrolysisH₂O (283 K)Ar–OH–N₂ displaced
NitrationNaNO₂/CuAr–NO₂–N₂ displaced
Coupling with phenolC₆H₅OH / OH⁻Ar–N=N–C₆H₄OH–N₂ retained
Coupling with amineC₆H₅NH₂ / H⁺Ar–N=N–C₆H₄NH₂–N₂ retained

9.10 Importance of Diazonium Salts in Synthesis

Diazonium salts are extremely versatile synthetic intermediates. They allow introduction of substituents that cannot be introduced by direct substitution:

Key Synthetic Advantages
  • Aryl fluorides: cannot be made by direct halogenation; made via Balz-Schiemann
  • Aryl iodides: I₂ is too weak an electrophile for direct substitution; made via KI reaction
  • Cyanobenzene: CN⁻ cannot do nucleophilic substitution on chlorobenzene; but easy via diazonium + CuCN
  • Phenol: can be made without direct substitution from aniline
  • Azo dyes: extended conjugated –Ar–N=N–Ar– chromophore; many commercial dyes
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Mnemonic: "F I Cl Br CN OH NO₂ Azo" Remember all substituents that can be introduced via diazonium salts using: Fluoride (Balz-Schiemann), Iodide (KI), Chloride/Bromide (Sandmeyer/Gattermann), Cyanide (CuCN), Hydroxyl (hydrolysis), Nitro (NaNO₂/Cu), Azo (coupling)

✏️ Practice Questions

Q1
Classify the following as 1°, 2°, or 3° amines and write their IUPAC names:
(i) (CH₃)₂CHNH₂    (ii) CH₃(CH₂)₂NH₂    (iii) CH₃NHCH(CH₃)₂    (iv) (CH₃CH₂)₂NCH₃
Q2
Arrange the following in decreasing order of basic strength:
C₆H₅NH₂, C₂H₅NH₂, (C₂H₅)₂NH, NH₃
Q3
Explain why aniline is a weaker base than methylamine even though both have an unshared pair on N.
Q4
How do you distinguish between primary, secondary and tertiary amines using (a) Hinsberg's test and (b) Carbylamine test?
Q5
Write the reactions for: (i) preparation of aniline from nitrobenzene (ii) Gabriel synthesis for propan-1-amine
Q6
Why do primary amines have higher boiling points than tertiary amines of similar molecular mass?
Q7
What is diazotisation? Write the conditions required and the reaction for preparation of benzenediazonium chloride.
Q8
Convert aniline to (i) chlorobenzene (ii) iodobenzene (iii) fluorobenzene (iv) cyanobenzene using diazonium salt reactions.
Q9
Why cannot aryl fluorides and aryl iodides be prepared by direct halogenation, and how does the diazonium salt route solve this problem?
Q10
An aromatic compound A on treatment with aqueous NH₃ and heating forms compound B which on heating with Br₂ and KOH forms compound C (mol. formula C₆H₇N). Identify A, B, C with IUPAC names.
Q11
Arrange in increasing order of basic strength:
(i) C₆H₅NH₂, C₆H₅CH₂NH₂, NH₃, C₂H₅NH₂, (C₂H₅)₂NH
(ii) CH₃NH₂, (CH₃)₂NH, (CH₃)₃N, C₆H₅NH₂, C₆H₅CH₂NH₂
Q12
Write the product when aniline reacts with: (i) acetic anhydride (ii) CHCl₃ + KOH(alc.) + heat (iii) NaNO₂ + HCl at 273K, then KI (iv) excess Br₂/H₂O

🎯 Important Exam Points – Quick Reference

CONCEPTAmines are sp³ hybridised, pyramidal geometry, lone pair on N makes them Lewis bases and nucleophiles.
CONCEPT1°, 2°, 3° in amines = number of carbon groups on N (NOT type of carbon — opposite to alcohols).
CONCEPTBasicity order (aqueous): 2° alkylamine > 1° alkylamine > NH₃ > arylamine. Reason: +I, solvation, steric effect together.
CONCEPTAniline pKb = 9.38 (weak base); lone pair delocalized into ring; anilinium ion has only 2 resonating structures vs aniline's 5.
CONCEPTGabriel synthesis → pure 1° alkyl amines only; NOT applicable to aryl amines (ArX doesn't do nucleophilic substitution with phthalimide anion).
CONCEPTHoffmann rearrangement: amide → amine with ONE CARBON LESS. Nitrile reduction → amine with ONE CARBON MORE.
CONCEPTBoiling point: 1° > 2° > 3° amines (H-bonding). All amines boil lower than alcohols of similar molar mass.
REACTIONCarbylamine test: R–NH₂ + CHCl₃ + 3KOH → R–N≡C (foul). Only 1° amines; used to distinguish 1° from 2° and 3°.
REACTIONDiazotisation: ArNH₂ + NaNO₂ + HCl at 273–278 K → ArN₂⁺Cl⁻. Aliphatic diazonium salts are unstable; aromatic ones are stable at 0–5°C.
REACTIONSandmeyer (Cu₂X₂): Cl, Br, CN. Gattermann (Cu powder): Cl, Br. KI alone: I. HBF₄ + Δ (Balz-Schiemann): F.
REACTIONCoupling reaction: Ar–N₂⁺ + phenol (OH⁻) → p-hydroxyazobenzene (orange dye). Ar–N₂⁺ + aniline (H⁺) → p-aminoazobenzene (yellow dye).
MCQAniline + Br₂(aq) → 2,4,6-tribromoaniline (white ppt). No catalyst needed — –NH₂ is so activating that ring reacts without FeBr₃.
MCQAniline does NOT undergo Friedel-Crafts reaction because AlCl₃ forms complex C₆H₅NH₂·AlCl₃ → N becomes positive → ring deactivated.
MCQDirect nitration of aniline → mixture of o-, m-, p- products because in strongly acidic medium, aniline is protonated (–NH₃⁺) → meta director.
MCQAmmonolysis order of reactivity: RI > RBr > RCl. Use large excess NH₃ to get 1° amine as major product.