Q.Nitration is an example of aromatic electrophilic substitution and its rate depends upon the group already present in the benzene ring. Out of benzene and phenol, which one is more easily nitrated and why?
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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. …
Concept: Acidity Of Phenol — but here the relevant idea is activating effect of the –OH group in electrophilic substitution.
Reasoning:
- In phenol, the lone pair on oxygen is delocalised into the benzene ring via resonance, increasing electron density at the ortho and para positions.
- This makes the ring more nucleophilic than benzene, which has no such activating group. …
Phenol is nitrated far more easily than benzene because the –OH group is a strong activating group that donates electron density into the ring via resonance, making the aromatic ring much more reactive toward electrophilic attack.
The core idea: what makes a ring “easy” to nitrate?
Nitration is an electrophilic aromatic substitution reaction. The attacking species is the nitronium ion (NO2+), which is an electron-seeking (electrophilic) reagent. For the reaction to happen quickly, the benzene ring must be electron-rich — it must have a high electron density that can attract and stabilise the incoming NO2+.
So the question reduces to: Which ring — benzene or phenol — has higher electron density in the aromatic π-system?
1. Benzene: the neutral baseline
Benzene has six π-electrons perfectly delocalised over six carbons. There is no substituent to push or pull electron density. Its electron density is uniform and moderate. The nitronium ion finds it “okay” to attack, but the reaction requires fairly harsh conditions — concentrated nitric and sulphuric acids, often with heat.
2. Phenol: the –OH group changes everything
In phenol, the –OH group is attached directly to the ring. Oxygen is highly electronegative, so you might guess it withdraws electrons. But that’s not the full story — and this is where the classic exam trap lies.
A common mistake is to think that because oxygen is electronegative, the –OH group withdraws electrons by induction. In fact, the resonance effect dominates here, and it is strongly electron-donating.
The lone pairs on oxygen can delocalise into the π-system of the benzene ring. Draw the resonance structures:
- One lone pair from oxygen forms a π-bond to the ipso carbon (the carbon attached to –OH).
- This pushes negative charge into the ortho and para positions of the ring.
- The result: the ring becomes significantly more electron-rich than benzene, especially at the ortho and para carbons.
Resonance effect of –OH:
–OHresonanceincreases electron density at ortho and para positions
3. Why this makes nitration faster
The rate-determining step in nitration is the attack of NO2+ on the ring to form a σ-complex (arenium ion). This intermediate is positively charged and unstable. A ring that already has high electron density can better stabilise this positive charge — it “gives” electrons more readily. …
Concept: Acidity of Phenol — Activating Effect of –OH Group
Method: Resonance Effect Analysis for Electrophilic Substitution
This method uses resonance structures to compare electron density in the benzene ring, determining which compound reacts faster with an electrophile (like NO2+ in nitration).
Steps
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Identify the substituent
- Benzene: no substituent (only H atoms).
- Phenol: has an –OH group attached to the ring.
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Analyze the resonance effect of –OH in phenol
The oxygen in –OH has lone pairs that can delocalize into the benzene ring via resonance:
Resonance structures show negative charge on ortho and para positions.
This increases electron density at the ortho and para carbons relative to benzene.
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Compare electron density available for electrophile
- In benzene: uniform, moderate electron density.
- In phenol: higher electron density (especially at ortho/para positions) due to resonance donation from –OH.
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Relate to nitration rate
Nitration requires the electrophile NO2+ to attack a region of high electron density. …
Here are the common mistakes students make when answering this question, along with how to avoid each one.
1. Mistake: Saying "Phenol is more reactive because it has an –OH group" without explaining why
- What students write: "Phenol is more reactive because of the –OH group."
- Why it’s wrong: This is incomplete. The examiner expects the mechanism — how the –OH group affects the ring.
How to avoid: Always link the –OH group to electron donation and activation of the ring.
Correct logic: The –OH group donates electrons via resonance (lone pair on oxygen delocalises into the ring). This increases electron density at ortho and para positions, making the ring more nucleophilic and thus more reactive toward electrophilic substitution (nitration).
2. Mistake: Confusing activating vs deactivating groups
- What students write: "Phenol is more reactive because –OH is a deactivating group."
- Why it’s wrong: –OH is a strong activating group, not deactivating.
How to avoid: Memorise the shortlist:
- Activating (electron-donating): –OH, –NH₂, –OCH₃, –CH₃ (alkyl groups)
- Deactivating (electron-withdrawing): –NO₂, –CN, –COOH, –CHO, –SO₃H
Tip: For exams, remember: All ortho/para directors (except halogens) are activating.
3. Mistake: Forgetting to mention resonance vs inductive effect
- What students write: "–OH group donates electrons by inductive effect."
- Why it’s wrong: The inductive effect of –OH is actually electron-withdrawing (due to high electronegativity of oxygen). The net activation comes from resonance, which dominates.
How to avoid: Clearly state:
"The –OH group shows a +R effect (resonance donation) that outweighs its –I effect (inductive withdrawal). This makes the ring electron-rich."
4. Mistake: Not comparing with benzene explicitly
- What students write: "Phenol is easily nitrated."
- Why it’s wrong: The question asks for a comparison — you must state why phenol is more reactive than benzene.
How to avoid: Always write a direct comparison:
"Benzene has no activating group, so its electron density is uniform and lower. Phenol, due to the –OH group, has higher electron density on the ring, making it more reactive toward electrophiles like NO₂⁺."
5. Mistake: Writing the wrong reaction conditions
- What students write: "Phenol undergoes nitration with conc. HNO₃ and conc. H₂SO₄ at 50–60°C."
- Why it’s wrong: Phenol is so reactive that it undergoes nitration even with dilute HNO₃ at room temperature — no need for conc. acid or heat.
How to avoid: Know the conditions:
- Benzene: Conc. HNO₃ + conc. H₂SO₄, 50–60°C
- Phenol: Dilute HNO₃, room temperature (or even with nitrating mixture, but much milder) …
Showing the 12 most recent of 30 on this concept.
- CBSE 2026Set ANNUAL1 markQ.Complete the following reaction: aniline (benzene ring with an −NH2 substituent) +Br2(aq)→ ?
›Reveal solutionSolution
The −NH2 group is a powerful activating, ortho/para-directing group, so aniline reacts instantly with bromine water at all three activated ring positions to give 2,4,6-tribromoaniline as a white precipitate.
The lone pair on the amino nitrogen delocalises into the aromatic ring by resonance, strongly raising electron density especially at the ortho (2,6) and para (4) positions. This makes those three positions so reactive toward electrophiles that no Lewis-acid catalyst is required (unlike ordinary benzene bromination, which needs FeBr3), and substitution does not stop after one bromination — it proceeds at all three activated sites simultaneously: …
- CBSE 2026Set SEM31 markMCQQ.The reagent which can be used for the following transformation is: phenol (C6H5OH) -> salicylaldehyde (2-hydroxybenzaldehyde, OH and CHO on adjacent ring carbons)(a) i) CHCl3, NaOH, 60-80 C ii) dil. HCl(b) i) CO2, NaOH, 120-140 C ii) dil. HCl(c) i) CCl4, NaOH, 60-80 C ii) dil. HCl(d) i) HCHO, NaOH ii) dil. HCl
›Reveal solutionSolution
Phenol + CHCl3 + NaOH (60-80 C) then acidification gives 2-hydroxybenzaldehyde (salicylaldehyde) by the Reimer-Tiemann reaction. Correct option (a).
In the Reimer-Tiemann reaction, chloroform (CHCl3) with aqueous NaOH generates dichlorocarbene (:CCl2), the electrophile. It attacks the phenoxide ring, chiefly at the ortho position; subsequent hydrolysis on acidification (dil. HCl) converts the -CHCl2 group into -CHO, introducing an aldehyde group ortho to -OH.
Product: salicylaldehyde (2-hydroxybenzaldehyde).
- CO2/NaOH (option b) is the Kolbe reaction, giving salicylic acid (-COOH), not the aldehyde. …
- CBSE 2025Set ANNUAL1 markQ.Aniline does not undergo Friedel-Crafts reaction. Give reason.
›Reveal solutionSolution
The catalyst itself reacts with aniline's basic amino group, deactivating the ring before any substitution can occur.
Friedel–Crafts reactions (alkylation/acylation) require the Lewis acid catalyst AlCl3. Aniline's −NH2 group is strongly basic (it has a lone pair on nitrogen), so it readily reacts with AlCl3 to form a salt/complex (C6H5N+H2−AlCl3−).
…
- CBSE 2025Set ANNUAL1 markQ.Fill in the blank: When phenol is reacted with concentrated nitric acid, the product formed is ________.
›Reveal solutionSolution
Phenol reacts with concentrated nitric acid to give 2,4,6-trinitrophenol (picric acid) via nitration at all three activated ortho/para positions.
The -OH group of phenol is a strong activating, ortho/para-directing group. With concentrated HNO3 (a strong nitrating agent), phenol undergoes exhaustive electrophilic nitration at both ortho pos …
- CBSE 2025Set ANNUAL1 markQ.What happens when aniline is treated with bromine water?
›Reveal solutionSolution
The -NH2 group strongly activates the benzene ring, so aniline reacts with bromine water even without a catalyst, substituting at all three positions ortho/para to -NH2 at once.
Aniline's -NH2 group is a powerful electron-donating, ring-activating group (o,p-director). It makes the ring so reactive that bromine water reacts directly, without needing a Lewis-acid catalyst, substituting simultaneously at both ortho positions and the para position:
C6H5NH2+3Br2(aq)→2,4,6-tribromoaniline↓(white ppt)+3HBr
…
- CBSE 2025Set ANNUAL1 markMCQQ.Reaction of bromine water with phenol gives:(a) 2, 4, 6-Tribromophenol(b) o-Bromophenol and p-Bromophenol(c) o-Bromophenol(d) p-Bromophenol
›Reveal solutionSolution
Phenol's -OH group strongly activates the ring at all three of the ortho/ortho/para positions, so with excess aqueous bromine (bromine water) all three positions get substituted at once, giving 2,4,6-tribromophenol as a white precipitate — no catalyst needed.
The -OH group donates electron density into the ring by resonance, making the ortho and para positions highly electron-rich. Bromine water (dilute aqueous Br2) is reactive enough on its own (unlike with benzene, which needs a Lewis-acid catalyst like FeBr3) to brominate all three activated positions (2, …
- CBSE 2025Set ANNUAL1 markQ.Identify the structure of the missing component in the given reaction sequence : Toluene --(conc. HNO3 + conc. H2SO4)--> ? --(Fe/HCl)--> 4-aminotoluene
›Reveal solutionSolution
Nitration of toluene (methyl = o,p-director) followed by reduction of the nitro group gives the target amine — the missing intermediate is the nitro compound before reduction.
Toluene, treated with a nitrating mixture (conc. HNO3 + conc. H2SO4), undergoes electrophilic aromatic substitution. The methyl group is an ortho/para-directing, ring-activating substituent, so nitration occurs mainly at the para (and ortho) position, giving predominantly 4-nitrotoluene (p-nitrotoluene) as the major product. This nitro compound, on reduction with F …
- CBSE 2025Set ANNUAL1 markMCQQ.In the chlorination of benzene, the reactive species is(a) Cl+(b) Cl-(c) Cl2(d) Cl2-
›Reveal solutionSolution
Chlorination of benzene proceeds via electrophilic attack by Cl+.
In the presence of a Lewis acid catalyst such as anhydrous FeCl3 or AlCl3, Cl2 is polarised and heterolysed to generate an electrophilic chlorine species, Cl+ (as part of a complex with the catalyst, e.g. [FeCl4]- Cl+). This Cl+ then attacks the electron-rich benzene ring …
- CBSE 2024Set 56/3/11 markMCQQ.For the following question, two statements are given – one labelled as Assertion (A) and the other labelled as Reason (R). Select the correct answer from the codes (A), (B), (C) and (D) as given below. (A) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of the Assertion (A). (C) Assertion (A) is true, but Reason (R) is false. (D) Assertion (A) is false, but Reason (R) is true. Assertion (A) : Aniline does not undergo Friedel-Crafts reaction. Reason (R) : Friedel-Crafts reaction is an electrophilic substitution reaction.
›Reveal solutionSolution
Aniline fails in Friedel-Crafts alkylation/acylation because the amino group forms a complex with the Lewis acid catalyst (AlCl₃), making the ring strongly deactivated. The Reason is true but does not explain this specific failure — it only states a general fact about the reaction type.
Concept first: Electrophilic Aromatic Substitution (EAS) and why aniline is special
Friedel-Crafts reactions are classic EAS reactions. In EAS, an electrophile attacks the electron-rich benzene ring. The more electron-rich the ring, the faster the reaction. Activating groups (like –NH₂, –OH, –OCH₃) donate electrons to the ring, making it more reactive toward electrophiles. So at first glance, aniline (C₆H₅NH₂) should be highly reactive in Friedel-Crafts reactions — the –NH₂ group is a strong activator.
But real chemistry is not that simple. The catalyst in Friedel-Crafts reactions is a Lewis acid, typically anhydrous AlCl₃. AlCl₃ is a strong electron-pair acceptor. The lone pair on the nitrogen of aniline is basic — it readily coordinates to AlCl₃, forming a salt-like complex. This complex changes everything.
Let’s walk through the reasoning step by step.
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What the Assertion says: Aniline does not undergo Friedel-Crafts reaction. This is a well-known experimental fact. If you try to alkylate or acylate aniline using AlCl₃ and an alkyl halide or acyl halide, you get either no reaction or a messy tar. The desired product is not formed.
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Why the Assertion is true: When aniline is mixed with AlCl₃, the nitrogen’s lone pair donates to the aluminium, forming C₆H₅NH₂·AlCl₃. This complex has a positive charge on nitrogen (or at least a strongly polarised N–Al bond). The –NH₂ group is no longer an electron-donating group — it becomes a strong electron-withdrawing group (–NH₂⁺AlCl₃⁻). This deactivates the ring so severely that even a powerful electrophile like the acylium ion cannot attack it. The ring becomes less reactive than nitrobenzene. So the reaction simply does not proceed.
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What the Reason says: Friedel-Crafts reaction is an electrophilic substitution reaction. This is a true statement — it is the textbook definition. Both alkylation and acylation proceed via an electrophilic attack on the aromatic ring. …
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- CBSE 2024Set A11 markMCQQ.Anisole on treatment with CH3Cl in the presence of anhydrous AlCl3 gives :(a) Toluene(b) O – chloroanisole(c) Ortho and para-methylanisoles(d) p – chloroanisole
›Reveal solutionSolution
Friedel–Crafts alkylation of anisole gives o- and p-methylanisole — option (c).
Anisole (C6H5OCH3) reacting with CH3Cl in the presence of anhydrous AlCl3 is a Friedel–Crafts alkylation: a methyl group is introduced onto the ring. The methoxy group −OCH3 is activating and ortho/para-directing, so the new methyl enters mainly at the ortho and para positions, giving a mixture of …
- CBSE 2024Set ANNUAL1 markQ.Write directive influence of -OCH3 group present in anisole for electrophilic substitution reaction.
›Reveal solutionSolution
The -OCH3 group in anisole donates electron density into the ring by resonance, activating the ring and directing incoming electrophiles preferentially to the ortho and para positions.
The oxygen of -OCH3 has lone pairs that can be delocalised into the benzene ring by resonance (+M/+R effect), increasing electron density specifically at the ortho and para positions relative to the -OCH3 group.
Although oxygen's electronegativity also exerts a small electron-withdrawing inductive (-I) effect, the stronger resonance donation dominates overall, making the ring more reactive than benzene itself (activating) towards electrophiles. …
- CBSE 2024Set ANNUAL1 markQ.Write chemical name of white precipitate obtained on the reaction of phenol with bromine water.
›Reveal solutionSolution
Phenol is highly reactive towards electrophilic bromination because the -OH group strongly activates the ring; even with dilute bromine water (no catalyst needed) it substitutes at all three available ortho/para positions at once.
The -OH group of phenol is a powerful activating, ortho/para-directing group (via resonance donation of its oxygen lone pair into the ring), making the ring far more reactive than benzene towards electrophiles. …
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