Q.Which of the following reaction schemes will yield phenol? (Two or more options may be correct.) Scheme (a): chlorobenzene is fused with NaOH at high temperature and about 300 atm pressure, then treated with H2O/H+. Scheme (b): aniline (C6H5NH2) is treated first with NaNO2/HCl and then with H2O on warming. Scheme (c): benzene is treated with oleum, then with NaOH on heating, then with H+. Scheme (d): chlorobenzene is treated with aqueous NaOH at 298 K and 1 atm, then with HCl.
🔒You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Aromatic Synthesis Route
Aromatic Synthesis Route – First Principles
Imagine you are a chef who has been given a plain wooden board and told to carve a specific shape out of it. You can cut away wood, but you cannot add wood back. That is exactly the problem in aromatic synthesis: you start with a simple, cheap aromatic ring (like benzene) and you need to attach specific groups at specific positions. The ring itself is already there — you cannot rearrange its carbon skeleton. So the entire challenge is where to put the next group, and how to get it there.
The "route" is the sequence of reactions you choose. The order matters enormously because the groups already on the ring control where the next group will go. A wrong order can give you the wrong isomer, or force you into a dead end.
The Core Idea: The Ring Directs
Every substituent already on a benzene ring has a directing effect — it tells the next incoming group to go to certain positions. There are two families:
- Ortho/para directors (e.g., –OH, –NH₂, –CH₃, –Cl) — they push the next group to positions 2 and 4 (ortho and para).
- Meta directors (e.g., –NO₂, –CN, –CHO, –SO₃H) — they push the next group to position 3 (meta).
A common mistake is to think you can just "add any group in any order." The ring is not passive — it has a memory of what is already attached. If you ignore directing effects, you will get a mixture of products, often with the wrong isomer as the major one.
The Precise Statement
An aromatic synthesis route is a planned sequence of electrophilic aromatic substitution (EAS) reactions, chosen so that each new substituent is introduced at the correct position relative to the existing ones. The route must account for:
- Directing effects of all current substituents.
- Activation/deactivation — some groups make the ring more reactive (activators), some make it less reactive (deactivators). You cannot do a reaction on a strongly deactivated ring without special conditions.
- Order of introduction — sometimes you must introduce a meta director first, then an ortho/para director, or vice versa, to get the desired final pattern.
A Concrete Example: Making 4-Nitrobenzoic Acid
You want a benzene ring with –COOH at position 1 and –NO₂ at position 4 (para to each other).
–COOH is a meta director. –NO₂ is also a meta director. If you put –COOH first and then nitrate, the –COOH will send the –NO₂ to the meta position (3), not para (4). That gives the wrong isomer.
Correct route:
- Nitrate benzene first → nitrobenzene ( –NO₂ is meta directing).
- Then oxidise the methyl group (if you started with toluene) or use a different method to introduce –COOH. But wait — –NO₂ deactivates the ring strongly. So you cannot easily do Friedel-Crafts acylation on nitrobenzene.
So the actual correct route is different:
- Start with toluene (methylbenzene). The –CH₃ is an ortho/para director and an activator.
- Nitrate toluene → you get a mixture of ortho and para nitrotoluene. Separate the para isomer.
- Oxidise the –CH₃ to –COOH using KMnO₄. The –NO₂ survives this oxidation.
The order here is: introduce the ortho/para director first ( –CH₃ ), then nitrate to get para, then convert the –CH₃ to –COOH. If you had tried to put –COOH first, you would have a meta director that would send –NO₂ to the wrong place.
The General Strategy
When planning a route, ask yourself in order:
- What is the final substitution pattern? (1,2- ; 1,3- ; 1,4- ; etc.)
- Which groups are ortho/para directors and which are meta directors?
- Can I introduce the meta director first, then the ortho/para director? (Often yes, because meta directors deactivate the ring, making further substitution harder — so you want to do the deactivating step last if possible.)
- If I need a 1,3 pattern, I usually put a meta director first, then an ortho/para director. If I need a 1,4 pattern, I usually put an ortho/para director first, then a meta director (because the ortho/para director will send the next group to para, and the meta director will then be at the correct position). …
Why this formula?
Aromatic Synthesis Route: Understanding the Why Behind the Key Principles
In organic chemistry, an aromatic synthesis route refers to a sequence of reactions designed to construct or modify an aromatic ring (typically benzene or its derivatives). The "key formulas" here are not single equations but rather rules and principles that govern reactivity and orientation. Let's break down the reasoning behind the most critical ones.
1. The 4n+2 Hückel Rule — Why Aromaticity Exists
Formula: A planar, cyclic, conjugated molecule is aromatic if it has (4n+2) π electrons, where n=0,1,2,…
Why this holds (the derivation):
- In a cyclic conjugated system, the π electrons occupy molecular orbitals (MOs) that form a ring.
- The energy levels of these MOs are given by the Frost circle (or polygon rule):
- For a regular polygon with N vertices (atoms), inscribe it in a circle with one vertex at the bottom.
- The energy of each MO corresponds to the vertical coordinate of each vertex.
- For benzene (N=6), the MOs split into:
- 1 low-energy bonding orbital
- 2 degenerate bonding orbitals
- 2 degenerate antibonding orbitals
- 1 high-energy antibonding orbital
- Key insight: The 6 π electrons fill the 3 bonding MOs completely. This gives a closed-shell, highly stable configuration — the aromatic stabilization energy (~150 kJ/mol for benzene).
- For N=4 (cyclobutadiene), the MO pattern gives 2 degenerate non-bonding orbitals — filling with 4 electrons creates an open-shell, antiaromatic (unstable) system.
Takeaway: The (4n+2) rule is not arbitrary — it emerges from the symmetry of cyclic π systems and the filling of bonding MOs.
2. Electrophilic Aromatic Substitution (EAS) — The Reactivity Formula
General reaction:
Ar-H+E+catalystAr-E+H+
Why this is the only viable route for aromatic rings:
- Aromatic rings are electron-rich (due to the π cloud) but resistant to addition — addition would break aromaticity.
- Mechanism reasoning:
- The electrophile E+ attacks the ring, forming a σ-complex (arenium ion) — this step is slow (rate-determining).
- The σ-complex is non-aromatic (4 π electrons in the ring) — it is high-energy and unstable.
- To regain aromaticity, the complex loses a proton (H+) — this step is fast and thermodynamically driven.
- Why substitution, not addition: Addition would permanently destroy aromaticity; substitution restores it.
Key formula: The rate law is Rate=k[Ar-H][E+] — first order in both, because the slow step involves both reactants.
3. Orientation Rules — Why Substituents Direct Where the Next Group Goes
Rule:
- Activating groups (e.g., −OH,−NH2,−OCH3) direct to ortho/para positions.
- Deactivating groups (e.g., −NO2,−CN,−CHO) direct to meta positions.
Why this happens (resonance + inductive reasoning):
For ortho/para directors:
- The substituent has a lone pair or π bond that can donate electrons into the ring via resonance.
- Draw the resonance structures of the σ-complex for attack at ortho, meta, and para:
- Ortho attack: The positive charge can be delocalized onto the substituent (e.g., −OH becomes =OH+). This stabilizes the intermediate.
- Para attack: Similar stabilization — charge delocalized to the substituent.
- Meta attack: The positive charge cannot reach the substituent — less stable.
- Result: Ortho/para intermediates are lower in energy → faster reaction.
For meta directors:
- The substituent is electron-withdrawing (by induction or resonance, e.g., −NO2).
- Draw resonance for ortho attack: The positive charge is placed directly on the carbon bearing the withdrawing group — this is highly destabilizing (like putting a + charge next to a + pole).
- For meta attack: The positive charge is never on the carbon with the withdrawing group — relatively more stable.
- Result: Meta attack is the least destabilized → preferred. …
Schemes (a), (b) and (c) all give phenol (Dow process, diazonium hydrolysis, and the benzene sulphonation route). Scheme (d) fails because chlorobenzene does not react with NaOH at room tem …
Three classic routes to phenol are the Dow process from chlorobenzene (fused NaOH under high temperature/pressure, then acid), diazonium-salt hydrolysis from aniline, and the sulphonation route from benzene (oleum -> alkali fusion -> acid). All of (a), (b) and (c) succeed; (d) fails because the aryl C-Cl bond is inert to aqueous NaOH under mild (298 K, 1 atm) conditions.
Scheme (a) - Dow process (yields phenol)
Chlorobenzene fused with NaOH at high temperature and high pressure gives sodium phenoxide; acidification (H2O/H+) liberates phenol. The forcing conditions are what make nucleophilic aromatic substitution possible.
Scheme (b) - via benzenediazonium salt (yields phenol)
Aniline + NaNO2/HCl (cold) gives benzenediazonium chloride; warming with water hydrolyses it to phenol (with loss of N2). Correct.
Scheme (c) - sulphonation route (yields phenol)
Benzene + oleum -> benzenesulphonic acid; fusion with NaOH (heating) -> sodium phenoxide; acidification (H+) -> phenol. Correct. …
Method: Reaction-Route Feasibility Evaluation Method (Named Routes to Phenol)
Core Concept
To judge whether a given multi-step scheme actually produces phenol, check each step against the KNOWN mechanistic requirements of the classic named routes to phenol (Dow process, diazonium-salt hydrolysis, benzene-sulphonation/alkali-fusion route) — a scheme fails if any step's stated reagents/conditions are insufficient for the transformation that step claims to perform.
Steps
- Recognise which "named route" a given scheme is attempting to replicate, based on its starting material (chlorobenzene -> Dow process; aniline -> diazonium hydrolysis; benzene -> sulphonation route).
- For each step in the scheme, check whether the stated reagent AND stated conditions (temperature, pressure) match what that transformation actually requires.
- Specifically flag any step where a normally-inert bond (like the aryl C-Cl bond in chlorobenzene) is claimed to react under conditions too mild to achieve that reactivity (e.g., aqueous NaOH at room temperature and 1 atm cannot displace chlorine from an aryl ring, since the required Dow-process conditions are ~623 K and ~300 atm).
- Confirm that steps which ARE mechanistically sound (e.g., diazonium salt formation followed by warming with water to hydrolyse it, or sulphonation followed by alkali fusion and acidification) proceed all the way through to phenol, including the final acidification of any phenoxide intermediate.
- Classify each scheme as "yields phenol" (all steps mechanistically valid and complete) or "does not yield phenol" (at least one step's conditions are insufficient for the claimed transformation). …
- GUJCET 2025Set 031 markMCQQ.Assertion: Only small amount of HCl is required in reduction of Nitrocompound with iron scrap. Reason: FeCl2, formed gets hydrolysed to release HCl during the reaction. (A) Assertion is wrong but Reason is correct. (B) Both Assertion and Reason are correct, Reason give correct explanation for Assertion. (C) Assertion is correct but Reason is wrong. (D) Both Assertion and Reason are correct, Reason does not give correct explanation for Assertion.
›Reveal solutionSolution
[!TLDR]
Hydrolysis of FeCl2 regenerates HCl, so only a small amount of acid is needed; both statements are true and the Reason explains the Assertion.
Concept
Reduction of aromatic nitro compounds to amines with Fe/HCl uses acid catalytically because it is regenerated during the reaction.
Solution
Iron scrap reduces the nitro group in acidic medium. The FeCl2 formed reacts with water:
FeCl2+2H2O→Fe(OH)2+2HCl …
- GUJCET 2024Set 131 markMCQQ.Identify 'C' in the following reaction. C6H5NO2Fe/HCl′A′NaNO2+HCl, 273KBH2O, 283K′C′ (A) Benzene (unsubstituted) (B) Chlorobenzene (C6H5−Cl) (C) Phenol (C6H5−OH) (D) Toluene (C6H5−CH3)
›Reveal solutionSolution
Reduction → diazotisation → warm hydrolysis gives phenol.
Concept. Standard aromatic sequence:
- C6H5NO2Fe/HCl aniline (A).
- Aniline NaNO2/HCl, 273K benzenediazonium chloride (B). …
- GUJCET 2022Set 171 markMCQQ.From following reactions, which reaction does not give "Benzene"? (A) C6H5COONa+SodalimeΔ (B) C6H5N2+Cl−+H3PO2+H2O⟶ (C) C6H5OH+ZnΔ (D) C6H5OH+H2CrO4[O]
›Reveal solutionSolution
C6H5OH+H2CrO4[O] oxidises phenol to benzoquinone — it does not give benzene.
Concept. Benzene is made by removing a functional group (decarboxylation, deamination, reduction of phenol). Oxidation does the opposite.
- (A) C6H5COONa + soda-lime, Δ → decarboxylation → benzene.
- (B) C6H5N2+Cl−+H3PO2 → reductive deamination → benzene. …
- GUJCET 2020Set 071 markMCQQ.C6H5CH2−MgBr(1)CO2/ether(2)H3O+′X′NaOH+CaOΔ′Y′? What is the final product in this reaction? (A) C6H6 (B) C6H5CH2CH3 (C) C6H5CH3 (D) C6H5CH2OH
›Reveal solutionSolution
C6H5CH2MgBrCO2/H3O+C6H5CH2COOHNaOH/CaO,ΔC6H5CH3. …
- GUJCET 2019Set 131 markMCQQ.Benzoyl chloride + Sodium benzoate Δ ____ (A) Benzoic anhydride (B) Benzyl benzoate (C) Benzyl alcohol (D) Benzaldehyde
›Reveal solutionSolution
An acyl chloride + a carboxylate salt on heating gives an acid anhydride.
Concept: An acid (acyl) chloride reacts with the sodium salt of a carboxylic acid (a nucleophilic carboxylate). The carboxylate oxygen attacks the electrophilic acyl carbon, chloride leaves as NaCl, and the product is the acid anhydride.
Steps:
- C6H5COCl (benzoyl chloride) is a good acylating agent.
- C6H5COONa provides the benzoate nucleophile. …
- GUJCET 2019Set 131 markMCQQ.Pn4QΔRAn. AlCl3S If P and S are toluence, Q & R are ____ and ____ respectively (A) Benzene, Benzoic acid (B) Benzoic acid, Benzene (C) Benzaldehyde, Sodium benzoate (D) Benzaldehyde, benzoic acid
›Reveal solutionSolution
Toluene -> benzoic acid (Q) -> benzene (R) -> toluene, so Q = benzoic acid, R = benzene.
Concept: P and S are both toluene, so the chain must leave and return to toluene. The last step uses anhydrous AlCl3 (a Friedel-Crafts catalyst), which converts benzene into toluene, so R must be benzene. Working backward, R (benzene) is formed on heating (decarboxylation) of benzoic acid, so Q is benzoic acid, itself obtained by oxidation of toluene (P).
Steps:
- P (toluene)oxidationC6H5COOH (Q, benzoic acid) …
- GUJCET 2015Set C1 markMCQQ.Which of the following is not formed by Sandmayer reaction? (A) C6H5I (B) C6H5Cl (C) C6H5Br (D) C6H5CN
›Reveal solutionSolution
[!TLDR]
C6H5I is prepared from benzenediazonium salt with KI, not by the Sandmeyer (cuprous-halide) route, so it is the odd one out; option (A).
Concept
In the Sandmeyer reaction, the diazonium group −N2+ is replaced using a cuprous salt:
- C6H5N2++CuCl→C6H5Cl
- C6H5N2++CuBr→C6H5Br
- C6H5N2++CuCN→C6H5CN
Solution …
🎓Unlock everything free for 14 days
- ✓Full step-by-step solutions
- ✓Concept-first explanations
- ✓Methods, shortcuts & mistakes
- ✓PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.