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NCERT Exemplar · Q40

Q.Why is the reactivity of all the three classes of alcohols with conc. HCl and ZnCl2ZnCl_2 (Lucas reagent) different?

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The Lucas test distinguishes alcohols by their carbocation stability: tertiary alcohols react instantly (cloudy), secondary in 5–10 minutes, and primary do not react at room temperature — all because the rate-determining step is the formation of a carbocation, whose stability follows the order 3∘>2∘>1∘3^\circ > 2^\circ > 1^\circ.

The Lucas test is a classic example of how reaction mechanism dictates observable differences in reactivity. The reagent — concentrated HCl with anhydrous ZnCl2\text{ZnCl}_2 — converts alcohols to alkyl chlorides. But why does a tertiary alcohol turn cloudy in seconds while a primary alcohol sits clear for hours?

The answer lies in the carbocation intermediate.


1. What the Lucas reagent actually does

ZnCl2\text{ZnCl}_2 is a Lewis acid. It coordinates to the oxygen of the alcohol, making the C–O\text{C–O} bond more polar and easier to break. The overall reaction is:

R–OH+HCl→ZnCl2R–Cl+H2O\text{R–OH} + \text{HCl} \xrightarrow{\text{ZnCl}_2} \text{R–Cl} + \text{H}_2\text{O}

But the mechanism is SN1S_N1 for tertiary and secondary alcohols, and SN2S_N2 for primary alcohols — and that difference is everything.

Reactivity order: 3∘>2∘>1∘\text{Reactivity order: } 3^\circ > 2^\circ > 1^\circ


2. The rate-determining step: carbocation formation

For an SN1S_N1 reaction, the slow step is:

R–OH+ZnCl2→R++ZnCl2(OH)−\text{R–OH} + \text{ZnCl}_2 \rightarrow \text{R}^+ + \text{ZnCl}_2(\text{OH})^-

The alcohol first gets protonated (or coordinated to Zn2+\text{Zn}^{2+}), then loses water to form a carbocation. The stability of this carbocation determines how fast the reaction proceeds.

  • Tertiary carbocation: three alkyl groups donate electron density via hyperconjugation and inductive effect. It is highly stable.
  • Secondary carbocation: two alkyl groups — moderately stable.
  • Primary carbocation: only one alkyl group — so unstable it barely forms at room temperature.
Watch out

A common mistake is to think primary alcohols never react with Lucas reagent. They do — but only at higher temperatures or over very long times. At room temperature, the reaction is too slow to observe.


3. What you actually see in the lab

The test is simple: add Lucas reagent to the alcohol and shake. The alkyl chloride product is insoluble in the aqueous medium, so it appears as a cloudy emulsion or a separate oily layer.

Alcohol classTime to cloudinessReason
TertiaryImmediate (seconds)Stable carbocation forms instantly
Secondary5–10 minutesModerate carbocation stability
PrimaryNo cloudiness (hours)Carbocation too unstable; SN2S_N2 is slow
Tip

If you see immediate cloudiness, the alcohol is definitely tertiary. If it takes a few minutes, it's secondary. If it stays clear for 30 minutes, it's primary — or methanol/ethanol, which are even slower.


4. Why primary alcohols fail at room temperature

Primary alcohols can react via SN2S_N2, where the nucleophile (Cl−\text{Cl}^-) attacks the carbon directly. But SN2S_N2 requires a backside attack on an unhindered carbon. In Lucas reagent, the Cl−\text{Cl}^- concentration is high, but the ZnCl2\text{ZnCl}_2 first coordinates to oxygen — making the carbon more electrophilic. Even so, the SN2S_N2 pathway is much slower than the SN1S_N1 pathway for tertiary alcohols.

For a primary alcohol to react via SN1S_N1, it would need to form a primary carbocation — which is so unstable that it essentially never happens in solution. So the reaction proceeds via SN2S_N2, which is slow at room temperature. …

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