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Q.(a) Arrange the following compounds in the increasing order of their acidic strength : 3,5-dinitrophenol, 4-methylphenol, phenol, 2,4,6-trinitrophenol

(b) What happens when : (write equations)
(i) Phenol is distilled with Zn dust ?
(ii) Anisole is treated with HBr ?
CBSECBSE Class XII Board 2025Subjective· 3mImportance★★★★★
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Acidity of phenols increases with electron-withdrawing groups (–NO₂) and decreases with electron-donating groups (–CH₃). The order is: 4-methylphenol < phenol < 3,5-dinitrophenol < 2,4,6-trinitrophenol. Zn dust reduces phenol to benzene; HBr cleaves anisole to phenol and bromomethane.


(a) Acidity of Substituted Phenols

The acidity of phenol depends on how easily it can donate its proton to form the phenoxide ion. Once the proton leaves, the negative charge resides on oxygen and delocalizes into the benzene ring. Anything that stabilizes this phenoxide ion makes the original phenol more acidic.

Electron-withdrawing groups pull electron density away from the ring, stabilizing the negative charge on oxygen. Electron-donating groups do the opposite—they destabilize the anion by pushing more electron density toward an already electron-rich oxygen.

Nitro groups (–NO₂) are powerful electron-withdrawing groups through both resonance and inductive effects. The more nitro groups present, and the closer they are to the –OH group (especially at ortho and para positions where resonance is strongest), the more acidic the phenol becomes.

Methyl groups (–CH₃) are electron-donating through the +I (inductive) effect, making the phenol less acidic than unsubstituted phenol.

Let's rank the four compounds:

  1. 4-methylphenol (p-cresol): The –CH₃ group donates electrons, destabilizing the phenoxide ion. This is the least acidic of the four.

  2. Phenol: No substituents to either withdraw or donate electrons significantly. This serves as our baseline.

  3. 3,5-dinitrophenol: Two –NO₂ groups withdraw electrons, but they are at meta positions. Meta substituents exert their effect primarily through the inductive effect (field effect), not resonance, so the stabilization is moderate.

  4. 2,4,6-trinitrophenol (picric acid): Three –NO₂ groups, with two at ortho positions and one at para. These positions allow maximum resonance stabilization of the phenoxide ion. This is the most acidic compound—in fact, picric acid is nearly as strong as mineral acids.

Acidity order: 4-methylphenol<phenol<3,5-dinitrophenol<2,4,6-trinitrophenol\text{Acidity order: } \text{4-methylphenol} < \text{phenol} < \text{3,5-dinitrophenol} < \text{2,4,6-trinitrophenol}

Watch out

Students often forget that the position of the nitro group matters. Ortho and para –NO₂ groups stabilize the phenoxide ion through resonance, while meta –NO₂ groups work mainly through inductive effects. That's why 3,5-dinitrophenol is less acidic than 2,4,6-trinitrophenol despite having only one fewer nitro group.


(b) Reactions

(i) Phenol distilled with Zn dust

Zinc dust acts as a reducing agent. When phenol is heated with Zn dust, the hydroxyl group is completely removed and replaced by hydrogen—essentially a reduction of the C–O bond.

The mechanism involves the formation of zinc phenoxide initially, followed by reduction. The net result is the conversion of phenol to benzene.

Equation:

CX6HX5OH+Zn→heatCX6HX6+ZnO\ce{C6H5OH + Zn ->[heat] C6H6 + ZnO} …

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