Q.Which of the following reactions belong to electrophilic aromatic substitution?
(Two or more options may be correct.)
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Electrophilic Aromatic Substitution
Electrophilic Aromatic Substitution – The First Meeting
Imagine you have a benzene ring — that perfect, flat hexagon of six carbons with alternating double bonds. It's stable, almost stubbornly so. You want to attach something new to it, say a bromine atom or a nitro group. But benzene doesn't react like an alkene. It doesn't just add across a double bond. Instead, it does something more elegant: it kicks out a hydrogen and keeps its aromatic ring intact.
That's the heart of Electrophilic Aromatic Substitution (EAS).
The Intuition: Why "Substitution" and Not "Addition"?
Benzene's stability comes from its delocalised π electrons — a cloud above and below the ring. This cloud is electron-rich, so it attracts electrophiles (electron-loving species). But if an electrophile simply added to a double bond, the ring would break its aromaticity, losing that huge stabilisation. That would be energetically costly.
So benzene does something smarter: it lets the electrophile attack, temporarily breaks aromaticity to form a high-energy intermediate (the arenium ion), and then loses a proton to restore the aromatic ring. The net result? A hydrogen is replaced by the electrophile. The ring is back to its stable, aromatic self.
The key trade-off: temporary loss of aromaticity is acceptable because the final product regains it. Addition reactions would permanently destroy aromaticity — benzene avoids that.
The Precise Statement
Electrophilic Aromatic Substitution is a reaction in which an electrophile (E+) replaces a hydrogen atom on an aromatic ring, proceeding through a sigma complex (arenium ion) intermediate, and restoring aromaticity after deprotonation.
The general equation:
Ar−H+EX+Ar−E+HX+
where Ar represents an aromatic ring.
The Mechanism in Three Steps
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Generation of the electrophile – Many EAS reactions need a catalyst to create a strong enough E+. For example, bromination uses FeBrX3 to polarise BrX2 into BrX+.
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Attack by the aromatic ring – The π electrons of benzene attack the electrophile, forming a sigma complex (also called the arenium ion or Wheland intermediate). This intermediate is non-aromatic — it has four π electrons delocalised over five carbons, and one sp3 carbon bearing the electrophile and a hydrogen.
Benzene+E+⟶Sigma complex (non-aromatic)
- Deprotonation – A base (often the counterion of the catalyst, like FeBrX4X−) removes the proton from the sp3 carbon. The pair of electrons from the C–H bond flows back into the ring, restoring the aromatic sextet.
Sigma complex+Base⟶Product+HX+
The sigma complex is not aromatic. It's a high-energy intermediate. Students often mistakenly think it's still aromatic — it isn't. That's why the step is fast and the complex is short-lived.
Why This Matters for Exams
EAS is the gateway to understanding how to put groups onto benzene rings. The rate-determining step is usually the formation of the sigma complex (step 2). The regiochemistry (where the electrophile goes) depends on whether the ring already has a substituent — that's the topic of activating/deactivating groups and ortho/para vs. meta directors.
But for now, remember this: …
Why this formula?
Electrophilic Aromatic Substitution: Why the Mechanism Holds
The Core Puzzle: Why Benzene Doesn't Just Add
Benzene (C6H6) has three double bonds — so why doesn't it undergo addition reactions like alkenes?
The answer lies in aromatic stabilisation: benzene's delocalised π-electron cloud (the "aromatic sextet") is about 150 kJ/mol more stable than a hypothetical cyclohexatriene with localised double bonds.
If benzene simply added an electrophile (like Br2), it would lose this stabilisation — a huge energy penalty.
So, nature chooses a different path: substitution instead of addition, preserving the aromatic ring.
The Key Formula: The Reaction Profile
The rate-determining step in electrophilic aromatic substitution (EAS) is the formation of the arenium ion (σ-complex):
Ar-H+E+slowAr-E+H(σ-complex)
Then, fast deprotonation restores aromaticity:
Ar-E+H+B−fastAr-E+BH
Why This Holds: The Energy Barrier Logic
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First step (slow): The electrophile E+ attacks the electron-rich ring. The σ-complex is non-aromatic — it has only 4 π-electrons delocalised over 5 carbons (the sixth carbon is sp3 hybridised). This intermediate is higher in energy than the starting benzene.
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Second step (fast): A base removes the proton, restoring the aromatic sextet. This step is strongly exothermic — the system regains ~150 kJ/mol of stabilisation.
The overall reaction is exothermic, but the activation energy is dominated by the destabilisation of the σ-complex.
The Rate Law: Why It's First Order in Both
From the mechanism:
Rate=k[Arene][E+]
Reasoning:
- The slow step involves one molecule of arene and one molecule of electrophile.
- No other species appear before the rate-determining step.
- Therefore, the rate law is bimolecular — first order in each reactant.
This is not derived from the overall stoichiometry — it comes directly from the molecularity of the slow step.
The Hammett Equation: Quantifying Substituent Effects
For substituted benzenes, the rate constant k relative to benzene (k0) follows:
logk0k=σρ
Why This Holds
- σ (sigma constant): Measures the electronic effect of a substituent (electron-donating or withdrawing) relative to hydrogen. It is derived from the ionisation constants of benzoic acids — a purely empirical scale.
- ρ (rho constant): Measures the sensitivity of the reaction to substituent effects. A positive ρ means the reaction is favoured by electron-withdrawing groups (rare in EAS); a negative ρ means electron-donating groups accelerate the reaction.
Why it works:
The σ-complex has a positive charge delocalised over the ring. Substituents that stabilise this positive charge (electron-donating groups like −OH, −NH2) lower the activation energy — hence σ is negative for such groups. Electron-withdrawing groups (−NO2, −CN) destabilise the σ-complex — σ is positive.
The linear free-energy relationship holds because the transition state resembles the σ-complex in charge distribution.
The Directing Effect: Why Ortho/Para vs Meta
The position of substitution is governed by the stability of the σ-complex for each possible attack site. …
The key idea is Electrophilic Aromatic Substitution (EAS): an electrophile replaces a hydrogen on the aromatic ring itself, not a hydrogen on a side group.
Step 1: Bromination of acetanilide -- Br+ (from Br2/catalyst) attacks the activated ring; a ring hydrogen is replaced. This is EAS.
Step 2: Coupling reaction of aryldiazonium salts -- the diazonium ion acts as a weak electrophile and attacks an activated ring (e.g. phenol), again replacing a ring hydrogen. This is EAS too.
Step 3: Diazotisation of aniline converts -NH2 to -N2+ at the nitrogen using nitrous acid; the ring itself is untouched. Not EAS. …
Electrophilic aromatic substitution (EAS) replaces a hydrogen on the aromatic ring with an electrophile. Bromination of acetanilide and the coupling reaction of aryldiazonium salts both fit this pattern. Diazotisation of aniline and acylation of aniline both react at the nitrogen of the -NH2 group, not on the ring, so neither is EAS. The correct options are (i) and (ii).
Electrophilic aromatic substitution is the workhorse of aromatic chemistry. The pi-electron cloud above and below a benzene ring makes it nucleophilic -- it attacks an electron-deficient species (the electrophile), replacing a ring hydrogen with the electrophile.
Let's examine each reaction with this lens.
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Bromination of acetanilide
Acetanilide has an -NHCOCH3 group attached to the benzene ring. This group is activating and ortho/para-directing because the nitrogen lone pair (even though partly delocalised onto the carbonyl) still donates some electron density into the ring by resonance.
Bromine (Br2) is polarised by a catalyst to generate Br+ (the electrophile). The ring attacks Br+, and after loss of H+, we get p-bromoacetanilide (major) and o-bromoacetanilide (minor).
This is a textbook EAS reaction. Option (i) is correct.
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Coupling reaction of aryldiazonium salts
An aryldiazonium salt (Ar-N2+) is a weak electrophile. In coupling, it attacks an activated aromatic ring (like phenol or aniline) at the para position. The diazonium ion is the electrophile; the OTHER aromatic ring is the nucleophile that loses a ring hydrogen.
The substitution happens on the phenol/aniline ring being coupled to -- so this is genuinely EAS. Option (ii) is correct.
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Diazotisation of aniline
Aniline (C6H5NH2) reacts with nitrous acid (HNO2, generated from NaNO2 + HCl) at 0-5 degC to form a diazonium salt:
C6H5NH2 + HNO2 + HCl -> C6H5N2+Cl- + 2H2O
The reaction occurs at the amino nitrogen; the aromatic ring's hydrogen count is unchanged. This is not a ring substitution. Option (iii) is incorrect.
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Acylation of aniline …
Method: Identify the Reaction Type by Mechanism
The key is to check whether the electrophile attacks the aromatic ring directly, replacing a hydrogen atom.
Step 1: Recall the definition of Electrophilic Aromatic Substitution (EAS)
- An electrophile (E+) attacks the aromatic ring.
- A hydrogen atom is substituted (not added).
- The aromaticity is restored after the reaction.
Step 2: Analyse each option
(A) Bromination of acetanilide
- Acetanilide has an aromatic ring.
- The −NHCOCH3 group activates the ring.
- Br2 in presence of a Lewis acid (or even without, due to activation) generates Br+ as the electrophile.
- Br+ attacks the ring → EAS.
- ✓ Correct
(B) Coupling reaction of aryldiazonium salts
- The aryldiazonium ion (ArN2+) acts as the electrophile.
- It attacks an activated aromatic ring (like phenol or aniline).
- This is an electrophilic aromatic substitution (azo coupling).
- ✓ Correct
(C) Diazotisation of aniline
- Aniline reacts with NaNO2+HCl at 0–5∘C.
- The NO+ (nitrosyl cation) attacks the amino group (−NH2), not the ring.
- This forms a diazonium salt — it is not substitution on the ring.
- ✗ Not EAS
(D) Acylation of aniline …
Here are the common mistakes students make on this question, along with the precise reasoning to avoid them.
Mistake 1: Confusing "Coupling" with "Diazotisation"
- The Error: Students often see "diazonium" in option (B) and (C) and assume both are the same type of reaction. They might mark (C) as EAS because it involves an aromatic ring.
- Why it’s wrong:
- Diazotisation (C) is the formation of the diazonium salt. It is an electrophilic substitution on nitrogen (of the NH2 group), not on the aromatic ring. The ring is untouched.
- Coupling (B) is the reaction of the diazonium salt (acting as an electrophile) with an activated aromatic ring (like phenol or aniline). This is a classic electrophilic aromatic substitution.
- How to avoid: Memorize the definitions:
- Diazotisation: ArNH2NaNO2/HClArN2+ (Formation of electrophile, not substitution on ring).
- Coupling: ArN2++Ar′H→Ar−N=N−Ar′ (The diazonium ion is the electrophile attacking the ring).
Mistake 2: Forgetting that Aniline must be "Protected" for Acylation
- The Error: Students see "Acylation of aniline" (D) and think, "Aniline has an amino group, so it activates the ring for Friedel-Crafts acylation." They mark it as EAS.
- Why it’s wrong: Aniline (C6H5NH2) is so strongly activating that it reacts violently with the Lewis acid catalyst (AlCl3) used in acylation. The NH2 group forms a complex with AlCl3, making the nitrogen positively charged and deactivating the ring. The reaction fails or gives very poor yields. In practice, aniline is first acylated (to acetanilide) and then subjected to Friedel-Crafts acylation.
- How to avoid: Remember the "Aniline Problem": Direct Friedel-Crafts on aniline does not work. The correct EAS reaction on aniline is bromination (which happens so fast it gives the tribromo product unless controlled). Acylation of aniline is not a standard EAS.
Mistake 3: Misidentifying the Electrophile in Bromination
- The Error: Students know bromination is EAS, but they might think option (A) "Bromination of acetanilide" is not EAS because acetanilide is an amide, not a simple benzene.
- Why it’s wrong: Acetanilide has an acetamido group (−NHCOCH3) attached to the ring. This group is a strong activating and ortho/para-directing group. The reaction proceeds via the same mechanism: Br2/FeBr3 generates Br+, which attacks the ring. …
- KEAM 2026Set eng-2026-04174 marksMCQQ.p-Bromophenol is the major product formed when phenol is treated with (A) Bromine water (B) Br2 in acetic acid at 300K (C) Br2 in CCl4 at 300K (D) Br2 in CS2 at 273K (E) Br2 in acetone at 273K
›Reveal solutionSolution
Using Br2 in the non-polar solvent CS2 at low temperature (273 K) suppresses polybromination and gives p-bromophenol as the major monobrominated product.
Phenol is strongly activated, so bromine water (polar, ionising) gives 2,4,6-tribromophenol.
To stop at monobromination, a low-polarity solvent and low temperature are used, which lowers the electrophilicity/availability of Br+. …
- KEAM 2026Set eng-2026-04224 marksMCQQ.When phenol is treated with excess of bromine water, it gives (A) o-bromophenol (B) o- and p-bromophenol (C) 1,3,5-tribromophenol (D) 2,4-dibromophenol (E) 2,4,6-tribromophenol
›Reveal solutionSolution
Phenol with excess bromine water undergoes electrophilic substitution at the ortho and para positions, giving a white precipitate of 2,4,6-tribromophenol. …
- KEAM 2026Set pha-2026-0418F4 marksMCQQ.Aniline reacts with acetic anhydride in pyridine to give a product which reacts with Br2 in CH3COOH to get (A) o-bromoaniline (B) p-bromoaniline (C) p-bromoacetanilide (D) o-bromoacetanilide (E) m-bromoacetanilide
›Reveal solutionSolution
Aniline → acetanilide (acetic anhydride/pyridine) → bromination gives mainly p-bromoacetanilide.
Aniline is acetylated to acetanilide C6H5NHCOCH3. The acetamido group is an activating ortho/para director, but the bulky −NHCOCH3 hinders the ortho positions, so electrophilic bromination with Br2/CH3COOH occurs predominantly at the para po …
- KEAM 2026Set pha-2026-0420F4 marksMCQQ.Which of the following reaction yieldstarry oxidation products? (A) Sulphonation of aniline (B) Nitration of aniline (C) Firedel-Crafts alkylation aniline (D) Firedel-Crafts alkylation of aniline (E) Bromination of aniline
›Reveal solutionSolution
Aniline is readily oxidised; direct nitration with HNO3/H2SO4 oxidises it to dark tarry products, so the amino group is protected (acetylated) first.
Aniline is very easily oxidised because the ring is electron-rich. When it is subjected to direct nitration with the strongly oxidising nitrating mixture (HNO3/H2SO4), a large part of it is oxidised to dark, tarry products rather than cleanly nitrated. This is exactly why, in practice, aniline is first acetylated ( …
- KEAM 2025Set eng-2025-04264 marksMCQQ.Phenol is treated with Con.H2SO4 to gives a product 'X' which on treatment with Con.HNO3 gives compound 'Y'. The compounds 'X' and 'Y' are respectively (A) Phenol-2-sulphonic acid and 2-nitrophenol (B) Phenol-2-sulphonic acid and 4-nitrophenol (C) Phenol-2-sulphonic acid, mixture of 2-nitrophenol and 4-nitrophenol (D) Phenol-2,4-disulphonic acid, mixture of 2-nitrophenol and 4-nitrophenol (E) Phenol-2,4-disulphonic acid and picric acid
›Reveal solutionSolution
Sulphonation of phenol gives phenol-2,4-disulphonic acid; subsequent nitration replaces the –SO3H groups to yield picric acid (2,4,6-trinitrophenol).
Treating phenol with concentrated H2SO4 introduces sulphonic acid groups, giving phenol-2,4-disulphonic acid (X). On treatment with concentrated HNO3, the readily displaceable sulphonic groups are replaced by nitro groups and the ring is further nitrated, producing picric acid (2,4,6-trinitrophenol, Y). …
- KEAM 2025Set eng-2025-04284 marksMCQQ.In the following reaction, the final product B is C6H5NH2(CH3CO)2OPyridineABr2CH3COOHB (A) A benzene ring with NHCOCH3 at position 1, Br at position 2 (ortho), and CH3 at position 4 (para) (B) A benzene ring with NHCOCH3 at position 1, Br at position 2 (ortho), and CH2Br at position 4 (para) (C) A benzene ring with NHCOCH3 at position 1, Br at position 3 (meta), and CH3 at position 4 (D) A benzene ring with NHCOCH3 at position 1, COCH3 at position 2 (ortho), and CH3 at position 4 (para) (E) A benzene ring with NHCOCH3 at position 1 and Br at position 4 (para)
›Reveal solutionSolution
Acetylation moderates aniline; the acetamido group is an o/p-director and bromination gives mainly the para product.
C6H5NH2 + (CH3CO)2O/pyridine → acetanilide (A), C6H5NHCOCH3. The acetamido group is a strong ortho/para director; steric factors make the para product dominant. With Br2/CH3COOH the final product B is **p-bromoacetan …
- KEAM 2025Set eng-2025-04294 marksMCQQ.What is the major product of the following reaction? 4-methylphenol (p-cresol) +Br2FeBr3 ? (A) a benzene ring with an -OBr group (para) and a -CH2Br group (B) phenol with a Br substituent ortho to the -OH (2-bromophenol) (C) a phenol (-OH) with a Br ortho to the OH and a -CH3 group para to the OH (2-bromo-4-methylphenol) (D) phenol (-OH) with a -CH2Br group at the para position (E) a benzene ring with a Br (para) and a -CH3 group (4-bromotoluene)
›Reveal solutionSolution
-OH activates and directs ortho/para. With the para position occupied by -CH3, electrophilic bromination goes ortho to the -OH, yielding 2-bromo-4-methylphenol.
p-Cresol is 4-methylphenol, with -OH and -CH3 para to each other. Both substituents are ortho/para directors, but the -OH group is a much stronger activator and controls the orientation. Its para position is already occupied by the methyl group, so electrophilic aromatic bromination (with Br2/FeBr3) occurs at the position ortho to the -OH. The major product is **2-bromo-4-methylphen …
- KEAM 2025Set pha-2025-0424A4 marksMCQQ.When chlorobenzene is treated with acetyl chloride in the presence of anhydrous AlCl3 , 4-Chloroacetophenone is formed as the major product. It is an example of (A) Nucleophilic substitution (B) Electrophilic substitution (C) Free radical substitution (D) Nucleophilic addition (E) Electrophilic addition
›Reveal solutionSolution
AlCl3 generates the acylium electrophile CH3CO+, which substitutes a ring hydrogen (para to Cl). This is electrophilic aromatic substitution.
CH3COCl+AlCl3→CH3CO++AlCl4−. The acylium ion attacks the electron-rich benzene ring of chlorobenzene at the para position (Cl is o,p-directing), for …
- KEAM 2024Set eng-2024-06084 marksMCQQ.An organic compound X (C6H6O) on reaction with zinc dust gives 'Y'. The product 'Y' reacts CH3COCl in presence of anhydrous AlCl3 to give 'Z' (C8H8O). The compounds X, Y and Z are respectively (A) benzaldehyde, benzene, methyl phenyl ketone (B) phenol, benzene, acetophenone (C) phenol, naphthalene, acetophenone (D) benzene, phenol, diphenyl ketone (E) cyclohexanol, cyclohexane, benzophenone
›Reveal solutionSolution
X = phenol, Y = benzene, Z = acetophenone: phenol is reduced by Zn dust to benzene, which undergoes Friedel–Crafts acylation to give acetophenone (C8H8O).
Identify X: C6H6O is phenol. Heating phenol with zinc dust reduces it (removes the –OH):
C6H5OH+Zn⟶C6H6+ZnO
so Y = benzene.
Benzene then undergoes Friedel–Crafts acylation with acetyl chloride and anhydrous AlCl3: …
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