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Q.Which of the following is most acidic ? (A) Benzyl alcohol (C6H5CH2OHC_6H_5CH_2OH) (B) Phenol (C6H5OHC_6H_5OH) (C) Cyclohexanol (C6H11OHC_6H_{11}OH) (D) 4-Chlorophenol (4ext−ClC6H4OH4 ext{-}ClC_6H_4OH)

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Acidity is governed by the stability of the conjugate base after losing H+H^+. Phenol’s conjugate base (phenoxide) is resonance-stabilized by the aromatic ring, making phenol far more acidic than benzyl alcohol or cyclohexanol. Adding an electron-withdrawing group like −Cl-Cl further stabilizes the conjugate base, so 4-chlorophenol is the most acidic among the given options.


1. The core idea: Acidity = conjugate base stability

When an acid HAHA loses a proton, it forms its conjugate base A−A^-. The more stable A−A^- is, the more willing HAHA is to lose H+H^+, and the stronger the acid. So the question reduces to: Which of these alcohols gives the most stable anion after deprotonation?

All four compounds have an −OH-OH group. The key difference is what the rest of the molecule does with the negative charge that appears on oxygen after H+H^+ is removed.


2. Eliminate the weakest: Cyclohexanol

Cyclohexanol (C6H11OHC_6H_{11}OH) is a saturated alcohol. Its conjugate base, cyclohexoxide, has the negative charge localized entirely on the oxygen atom. There is no resonance or inductive effect from the alkyl ring to spread the charge. Alkyl groups are actually weakly electron-donating (via hyperconjugation/inductive effect), which destabilizes the negative charge. So cyclohexanol is the least acidic of the four.


3. Benzyl alcohol: A small inductive help

Benzyl alcohol (C6H5CH2OHC_6H_5CH_2OH) has a phenyl ring, but it is separated from the −OH-OH by a −CH2−-CH_2- group. After deprotonation, the negative charge on oxygen cannot delocalize into the ring because the CH2CH_2 group breaks conjugation. The phenyl ring can only exert a weak inductive electron-withdrawing effect through the sigma bonds, which slightly stabilizes the benzoxide anion. This makes benzyl alcohol more acidic than cyclohexanol, but not dramatically so.

Watch out

A common mistake is to think that because benzyl alcohol has a benzene ring, it will be as acidic as phenol. But the ring must be directly attached to the oxygen for resonance delocalization of the negative charge. The CH2CH_2 spacer kills that possibility.


4. Phenol: The resonance game-changer

Phenol (C6H5OHC_6H_5OH) is the classic example of how resonance boosts acidity. When phenol loses H+H^+, the phenoxide ion forms. The negative charge on oxygen can be delocalized into the aromatic ring via resonance:

CX6HX5OX−↔ortho and para negative charge on ring\ce{C6H5O^- <-> \text{ortho and para negative charge on ring}}

This spreads the negative charge over several atoms (oxygen and the ortho/para carbons), which greatly stabilizes the conjugate base. As a result, phenol is about 10610^6 times more acidic than cyclohexanol. The pKapK_a of phenol is ~10, while cyclohexanol's pKapK_a is ~16.

Acidity order (so far): Cyclohexanol < Benzyl alcohol < Phenol\text{Acidity order (so far): Cyclohexanol < Benzyl alcohol < Phenol}


5. 4-Chlorophenol: Inductive + resonance enhancement …

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