Q.Assertion: Aryl iodides can be prepared by reaction of arenes with iodine in the presence of an oxidising agent.
Reason: Oxidising agent oxidises I2 into HI.
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Inductive Effect on Acidity
Inductive Effect on Acidity – From Intuition to Precision
Imagine you are holding a rope tied to a heavy box. If you pull the rope, the box moves toward you. Now imagine the rope is made of rubber bands — the pull still reaches the box, but it gets weaker the farther away you are. That is exactly how the inductive effect works inside a molecule.
The Core Intuition
An acid donates a proton (H+). After it does, the remaining part (the conjugate base) carries a negative charge. The stability of that negative charge determines how willing the molecule is to give up the proton. More stable conjugate base → stronger acid.
Now, some atoms or groups are electron-withdrawing — they pull electron density toward themselves through the sigma bonds. If such a group is attached near the acidic proton, it pulls some electron density away from the negative charge on the conjugate base. That spreads out (delocalises) the negative charge, making the conjugate base more stable. The acid becomes stronger.
Conversely, electron-donating groups push electron density toward the negative charge, concentrating it and making the conjugate base less stable. The acid becomes weaker.
The inductive effect operates through sigma bonds only. It does not involve pi bonds or resonance. It is a permanent, through-bond polarisation.
The Precise Statement
Inductive effect on acidity: The acidity of a compound increases with the presence of electron-withdrawing groups (EWGs) near the acidic site, and decreases with electron-donating groups (EDGs). The effect is strongest when the group is closest to the acidic proton, and diminishes rapidly with distance.
Mathematically, for a series of substituted carboxylic acids:
R-COOHwhere R = substituent
The acid dissociation constant Ka changes as:
- If R is electron-withdrawing (e.g., −Cl, −NO2, −CF3): Ka increases → stronger acid.
- If R is electron-donating (e.g., −CH3, −C2H5): Ka decreases → weaker acid.
Why Distance Matters
The inductive effect falls off with distance because sigma bonds are localised. Each bond attenuates the effect by roughly a factor of 2–3. For example, compare:
| Compound | pKa | Explanation |
|---|---|---|
| CH3COOH | 4.76 | Reference (no EWG) |
| ClCH2COOH | 2.86 | Cl withdraws through one bond |
| Cl2CHCOOH | 1.29 | Two Cl atoms, stronger withdrawal |
| Cl3CCOOH | 0.65 | Three Cl atoms, strongest withdrawal |
| CH3CH2COOH | 4.87 | Ethyl group is electron-donating (slightly weaker acid) |
Notice: ClCH2COOH is about 100 times stronger than acetic acid (ΔpKa≈1.9). But if the Cl is moved further away:
| Compound | pKa |
|---|---|
| ClCH2CH2COOH | 4.08 |
| ClCH2CH2CH2COOH | 4.52 |
The effect fades as the chlorine moves farther from the carboxyl group. …
Why this formula?
Inductive Effect on Acidity: Why It Works
The inductive effect is a through-bond electron displacement caused by differences in electronegativity. When we ask why it affects acidity, we must first understand what acidity means at the molecular level.
The Core Idea: Stabilising the Conjugate Base
Acidity is governed by the equilibrium:
HA⇌H++A−
The stronger the acid, the more it favours the right side. This happens when the conjugate base A− is more stable. The inductive effect directly influences this stability.
Why Electron-Withdrawing Groups (EWG) Increase Acidity
Consider a carboxylic acid with an electronegative atom (like Cl) attached to the carbon chain:
Cl−CH2−COOH
- The inductive pull: The Cl atom is more electronegative than carbon. It pulls electron density toward itself through the sigma bonds.
- Effect on the O–H bond: This electron withdrawal travels along the carbon chain, reducing electron density around the O–H bond. The bond becomes more polarised, making the H⁺ easier to remove.
- Stabilising the conjugate base: After losing H⁺, the negative charge on the carboxylate ion (RCOO−) is delocalised by resonance. But the inductive effect further stabilises this negative charge by pulling electron density away from the oxygen atoms. This makes the conjugate base less reactive (more stable), shifting equilibrium toward dissociation.
Key insight: The inductive effect doesn't just weaken the O–H bond — it stabilises the anion that forms after deprotonation.
The Quantitative Relationship: Hammett Equation
For substituted benzoic acids, the effect is quantified by the Hammett equation:
log(Ka0Ka)=σρ
Where:
- Ka = acid dissociation constant of substituted acid
- Ka0 = acid dissociation constant of unsubstituted benzoic acid
- σ = substituent constant (measures inductive + resonance effect)
- ρ = reaction constant (sensitivity of the reaction to substituent effects)
Why This Formula Holds
The derivation comes from linear free-energy relationships:
- Free energy change: For any acid dissociation:
ΔG∘=−RTlnKa
- Effect of substituent: A substituent changes ΔG∘ by an amount proportional to its electronic effect:
Δ(ΔG∘)=−RTln(Ka0Ka)
-
Separability assumption: The total effect of a substituent on any reaction can be factored into:
- A substituent-specific term (σ) — how strongly it pulls/pushes electrons
- A reaction-specific term (ρ) — how sensitive the reaction is to electronic effects
-
Empirical validation: Hammett found that for meta and para substituted benzoic acids, plotting log(Ka/Ka0) against σ gives a straight line. This confirms the additive nature of inductive effects.
The Inductive Effect Constant (σI) …
Concept: Electrophilic Aromatic Substitution – Iodination requires an oxidising agent because iodine is the least reactive halogen and the reaction produces HI, which is a reducing agent that would reverse the reaction.
Reasoning:
- Direct iodination of arenes is reversible and unfavourable because I2 is a weak electrophile and the by-product HI reduces the product back to the arene.
- An oxidising agent (e.g., HNO3 or H2O2) oxidises the HI formed back to I2, driving the equilibrium forward. …
The assertion is correct — aryl iodides are prepared by reacting arenes with iodine in the presence of an oxidising agent. The reason is wrong: the oxidising agent does not oxidise I2 into HI; rather, it oxidises the I− (formed as a byproduct) back to I2, preventing the reverse reaction and driving the equilibrium forward.
- Understanding the reaction: Aromatic iodination Direct iodination of benzene (or other arenes) with iodine alone is extremely slow and reversible. The reaction is:
ArH+I2⇌ArI+HI
The equilibrium lies far to the left because HI is a strong reducing agent — it can reduce the aryl iodide back to the arene. To make the reaction practical, we need to remove HI as it forms, or prevent its accumulation.
- Role of the oxidising agent An oxidising agent (like HNO3, H2O2, or IO3−) is added to oxidise the I− ions (from HI) back to molecular iodine:
2HI+[O]→I2+H2O
This continuously regenerates I2, shifting the equilibrium to the right and allowing the aryl iodide to form in good yield. The oxidising agent does not oxidise I2 into HI — that would be chemically backwards (HI is a reduced form of iodine).
- Why the reason is wrong
The reason states: "Oxidising agent oxidises I2 into HI." That is incorrect because:
- I2 is already in a higher oxidation state (0) than HI (−1).
- Oxidising an element means increasing its oxidation number — going from I2 (0) to HI (−1) is actually a reduction, not oxidation.
- The correct role is the opposite: the oxidising agent oxidises HI (or I−) back to I2. …
Method: Assertion–Reason Analysis
Concept: Electrophilic aromatic substitution (iodination) — iodine is the least reactive halogen for direct substitution, so an oxidising agent is needed to generate a better electrophile.
Steps:
-
Check the Assertion
- Aryl iodides can be prepared by reacting arenes with iodine in the presence of an oxidising agent (e.g., HNOX3 or HX2OX2).
- This is correct — iodine alone is too weak an electrophile; the oxidising agent converts IX2 into a more reactive species like IX+ or IOH.
-
Check the Reason
- The reason states: Oxidising agent oxidises IX2 into HI. …
Common Mistakes & How to Avoid Them
Mistake 1: Thinking the Reason is Correct
The error: Students assume that since an oxidising agent is used, it must oxidise I2 to HI. They don't check the chemistry carefully.
Why it's wrong: An oxidising agent gains electrons — it oxidises something else while itself getting reduced. Here, the oxidising agent (like HNO3 or H2O2) actually oxidises I2 to I+ (a more reactive electrophile), not to HI. HI is a reducing agent, not an oxidation product.
How to avoid: Always ask: "What is the actual role of the oxidising agent?" In this reaction:
- I2 is oxidised to a reactive I+ species
- The oxidising agent itself gets reduced
- HI would be a reduction product, not an oxidation product
Mistake 2: Confusing the Assertion as Wrong
The error: Some students think aryl iodides cannot be prepared directly, so they mark the assertion as false.
Why it's wrong: Aryl iodides can be prepared by direct iodination of arenes — but only because the oxidising agent makes the reaction possible. Without it, I2 is too unreactive for electrophilic substitution.
How to avoid: Remember the reactivity order for halogens in electrophilic substitution:
- F2 > Cl2 > Br2 > I2
- I2 is the least reactive — it needs an oxidising agent to generate I+ (a better electrophile)
Mistake 3: Choosing Option (i) — Both Correct, Reason Explains Assertion
The error: Students see both statements as "true" and assume the reason correctly explains the assertion.
Why it's wrong: The reason is factually incorrect (oxidising agent does not produce HI). Even if both were true, the reason given is not the correct explanation.
How to avoid: Always verify the mechanism behind the reason. The correct explanation is:
- Oxidising agent converts I2 to I+ (electrophile)
- I+ attacks the benzene ring
- HI is never formed — instead, H+ is released as a byproduct
Mistake 4: Misreading the Options …
Showing the 12 most recent of 14 on this concept.
- GSEB Higher Secondary Certificate (HSC) Examination 2026Set ANNUAL1 markMCQQ.Which acid has lowest pKa?(a) C6H5COOH(b) HCOOH(c) C6H5CH2COOH(d) CH3CH2COOH
›Reveal solutionSolution
Among simple carboxylic acids, acidity decreases as alkyl/aryl substituents (electron donors) are added onto the carbon bearing -COOH; formic acid (no such substituent) is the strongest.
Acid strength of a carboxylic acid depends on how well the conjugate base (carboxylate, RCOO⁻) is stabilised — electron-donating alkyl groups destabilise the negative charge (reduce acidity), while the acid gets stronger as such donation is minimised or offset by electron-withdrawing character:
- HCOOH (formic acid) — H directly attached to the carbonyl carbon, no alkyl group to donate electron density; the strongest of the four, pKa ≈ 3.75 (lowest pKa).
- C6H5COOH (benzoic acid) — the ring can donate some electron density by resonance and is only mildly electron-withdrawing overall; pKa ≈ 4.2. …
- GUJCET 2025Set 031 markMCQQ.For which compound pKa is highest? (A) HCOOH (B) CH3CH2COOH (C) C6H5CH2COOH (D) ClCH2CH2COOH
›Reveal solutionSolution
[!TLDR]
Propanoic acid is the weakest acid here, so it has the highest pKa.
Concept
A higher pKa means a weaker acid. Electron-withdrawing groups (like −Cl, phenyl) stabilise the carboxylate and increase acidity (lower pKa); electron-donating alkyl groups reduce acidity (raise pKa).
Solution
Compare approximate pKa values:
- (A) HCOOH (formic acid): ≈3.75 (strongest, no destabilising alkyl chain).
- (B) CH3CH2COOH (propanoic acid): ≈4.87 (electron-donating ethyl group, no withdrawing group) — weakest acid, highest pKa. …
- GUJCET 2024Set 131 markMCQQ.Which of the following carboxylic acid has least pKa value among all? (A) NO2⋅CH2⋅COOH (B) CH3⋅COOH (C) HCOOH (D) C6H5⋅COOH
›Reveal solutionSolution
Strongest electron-withdrawing group → strongest acid → lowest pKa. NO2CH2COOH wins.
Concept. An electron-withdrawing substituent stabilises the carboxylate anion, raising acid strength (lowering pKa). …
- GSEB Higher Secondary Certificate (HSC) Examination 2024Set ANNUAL1 markMCQQ.Which of the following compound has highest Ka Value?(a) NO2CH2COOH(b) BrCH2COOH(c) CCl3COOH(d) CH3COOH
›Reveal solutionSolution
Trichloroacetic acid (CCl3COOH, pKa about 0.7) has the highest Ka because three chlorine atoms together exert the strongest cumulative electron-withdrawing effect. Answer: (c).
Acid strength is governed by how well the conjugate-base carboxylate is stabilised by the electron-withdrawing (-I) substituents. Comparing the four:
- CCl3COOH: pKa about 0.66 (three Cl atoms, very strong cumulative -I)
- NO2CH2COOH: pKa about 1.68
- BrCH2COOH: pKa about 2.9
- CH3COOH: pKa about 4.76 (no EWG) …
- GUJCET 2022Set 171 markMCQQ.Which is the incorrect order of increasing acidic strength for the following? (A) CH2FCH2CH2COOH<CH3CHFCH2COOH (B) CH2ClCOOH<CH2FCOOH (C) CH3COOH<CH2ClCOOH (D) HCOOH<C6H5COOH
›Reveal solutionSolution
HCOOH (pKa 3.75) is a stronger acid than C6H5COOH (pKa 4.20), so (D)'s order is wrong.
Concept. "Increasing acidic strength" means the item on the right must be the stronger acid.
- (A) F on β-C (closer to COOH) is more acidic than F on γ-C → order correct.
- (B) F is more electronegative than Cl → CH2FCOOH stronger than CH2ClCOOH → correct.
- (C) CH2ClCOOH stronger than CH3COOH → correct. …
- GSEB Higher Secondary Certificate (HSC) Examination 2022Set ANNUAL1 markMCQQ.Which acid has the lowest pKa?(a) CH3COOH(b) C6H5CH2COOH(c) C6H5COOH(d) CH3CH2COOH
›Reveal solutionSolution
Lower pKa = stronger acid; acidity here is governed by how well the conjugate base (carboxylate anion) is stabilised.
Approximate pKa values: benzoic acid (C6H5COOH) ≈ 4.2 (the phenyl ring is directly conjugated to -COOH, and the -I effect of the sp2 ring stabilises the carboxylate); phenylacetic acid (C6H5CH2COOH) ≈ 4.3 (the CH2 spacer partially insulates the ring's effect); acetic acid (CH3COOH) ≈ 4.76; propanoic acid (CH3CH2COOH) ≈ 4.87 (the extra electron-donat …
- GUJCET 2021Set 151 markMCQQ.Which compound having maximum value of pKa from following? (A) o−O2N−C6H4−OH (B) p−O2N−C6H4−OH (C) m−O2N−C6H4−OH (D) C6H5OH
›Reveal solutionSolution
Fewer/no electron-withdrawing groups → weaker acid → highest pKa = plain phenol.
Concept: An −NO2 group withdraws electron density and stabilises the phenoxide anion, increasing acidity (lowering pKa). Removing it makes the phenol the weakest acid, i.e. the largest pKa. …
- GUJCET 2021Set 151 markMCQQ.Which compound having maximum acidic strength of the following? (A) 4-methoxy benzoic acid (B) 2-methoxy benzoic acid (C) Benzoic acid (D) 4-nitrobenzoic acid
›Reveal solutionSolution
Electron-withdrawing −NO2 (para) most stabilises the anion → strongest acid.
Concept: Groups that withdraw electron density stabilise the carboxylate and raise acidity; electron-donating groups (like −OCH3) lower it.
- (A) 4-methoxy and (B) 2-methoxybenzoic acid — −OCH3 donates by resonance, weaker acids. …
- GUJCET 2020Set 071 markMCQQ.Which of the following acid has highest pKa value? (A) FCH2COOH (B) O2NCH2COOH (C) NCCH2COOH (D) C6H5CH2COOH
›Reveal solutionSolution
Highest pKa = weakest acid; C6H5CH2COOH has the least electron-withdrawing substituent.
Concept — inductive stabilisation of the carboxylate. Stronger electron-withdrawing groups (−NO2>−CN>−F) stabilise the conjugate base and lower pKa. The phenyl …
- GSEB Higher Secondary Certificate (HSC) Examination 2020Set ANNUAL1 markMCQQ.Conjugate base of which of the following acid is weak?(a) CH3CH2CH(I)COOH(b) CH3CH2CH(F)COOH(c) CH3CH2CH(Br)COOH(d) CH3CH2CH(Cl)COOH
›Reveal solutionSolution
The stronger the acid, the weaker (more stable, less basic) its conjugate base; among these halo-substituted acids, the most electronegative halogen (F) gives the strongest acid and hence the weakest conjugate base.
A strong acid ionises readily because its conjugate base is comparatively stable and has little tendency to re-accept a proton (i.e. it is a WEAK base). Acid strength here is controlled by the -I (electron-withdrawing inductive) effect of the halogen substituent close to -COOH: this effect is strongest for the most electronegative halogen and weakens down the group, F …
- GSEB Higher Secondary Certificate (HSC) Examination 2019Set ANNUAL1 markMCQQ.For which acid the value of pKa is highest? (para-substituted benzoic acids)(a) p-Nitrobenzoic acid (4-NO2-C6H4-COOH)(b) p-Toluic acid / p-methylbenzoic acid (4-CH3-C6H4-COOH)(c) p-Anisic acid / p-methoxybenzoic acid (4-OCH3-C6H4-COOH)(d) p-Chlorobenzoic acid (4-Cl-C6H4-COOH)
›Reveal solutionSolution
pKa is highest for the weakest acid; electron-donating para substituents raise pKa (weaken acidity) while electron-withdrawing substituents lower pKa (strengthen acidity).
Acid strength of a substituted benzoic acid depends on how the para substituent affects stability of the carboxylate anion (its conjugate base) via induction and resonance:
- p-NO2 (-NO2 is strongly electron-withdrawing by both induction and resonance) stabilises the anion most -> strongest acid -> LOWEST pKa.
- p-Cl (weak electron-withdrawing by induction, small resonance donation) -> mildly increases acidity -> pKa close to/slightly below benzoic acid.
- p-CH3 (weak electron-donating by hyperconjugation) -> mildly decreases acidity -> pKa slightly above benzoic acid. …
- GSEB Higher Secondary Certificate (HSC) Examination 2018Set ANNUAL1 markMCQQ.Which of the following compound has highest acidic strength?(a) p-methylbenzoic acid (COOH with para CH3)(b) o-nitrobenzoic acid (COOH with ortho NO2)(c) benzoic acid(d) p-nitrobenzoic acid (COOH with para NO2)
›Reveal solutionSolution
o-nitrobenzoic acid is the most acidic because the ortho -NO2 group withdraws electrons most strongly (ortho effect).
Acidity of substituted benzoic acids depends on the substituent:
- Electron-withdrawing groups (like -NO2) stabilise the carboxylate anion -> increase acidity.
- Electron-donating groups (like -CH3) decrease acidity.
Ranking:
- p-CH3 (p-toluic acid): weakest (EDG).
- benzoic acid: reference.
- p-NO2: strong EWG, more acidic. …
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