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Q.Give reasons for the following :

(a) Chlorine is ortho/para directing in electrophilic aromatic substitution reactions, though chlorine is an electron withdrawing group.
(b) Racemic mixture is optically inactive.
(c) Allyl chloride is hydrolysed more readily than n-propyl chloride.
CBSECBSE Class XII Board 2024Subjective· 3mImportance★★★★★
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Here are the explanations for the given statements:


(a) Chlorine is ortho/para directing in electrophilic aromatic substitution reactions, though chlorine is an electron withdrawing group.

Chlorine is ortho/para directing due to resonance donation of its lone pair, which outweighs its inductive electron withdrawal in terms of regioselectivity, despite making the ring less reactive overall.

Electrophilic Aromatic Substitution (EAS) reactions involve an electrophile attacking an aromatic ring. The substituents already present on the ring influence both the reactivity of the ring and the position where the new substituent attaches.

  1. Inductive Effect of Chlorine: Chlorine is highly electronegative. Through the sigma (σ\sigma) bond framework, it pulls electron density away from the benzene ring. This is known as the inductive electron-withdrawing effect.

C←Cl\text{C} \leftarrow \text{Cl}

This withdrawal of electron density makes the benzene ring less electron-rich, thus deactivating it towards electrophilic attack. A deactivated ring reacts slower than benzene itself.

2. Resonance Effect of Chlorine: Chlorine possesses lone pairs of electrons. These lone pairs can be donated into the benzene ring through resonance. This electron donation increases electron density at specific positions on the ring: the ortho and para positions.

More precisely, the resonance structures show a negative charge developing at the ortho and para positions, making these positions more nucleophilic and thus more attractive to an incoming electrophile.

> [!IMPORTANT]
> The resonance structures for chlorobenzene show increased electron density at the ortho and para positions:
> $$ \text{Cl-C}_6\text{H}_5 \quad \longleftrightarrow \quad \text{Cl}^+=\text{C}_6\text{H}_5^- (\text{ortho/para}) $$

3. Dominance of Effects:

* Reactivity: The inductive electron-withdrawing effect of chlorine is stronger than its resonance electron-donating effect. This net withdrawal of electron density from the ring makes chlorobenzene less reactive than benzene towards electrophiles (i.e., it is a deactivating group).

* Regioselectivity (Directing Effect): While the inductive effect reduces overall electron density, the resonance effect localizes the increased electron density specifically at the ortho and para positions. When an electrophile attacks, it will preferentially attack the positions that are relatively more electron-rich. Since the ortho and para positions are the only ones that gain electron density via resonance, these are the preferred sites for electrophilic attack. …

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