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Q.Why are haloarenes less reactive towards nucleophilic substitution reaction ? Give two reasons.

CBSECBSE Class XII Board 2026Subjective· 2mImportance★★★★★
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Haloarenes are less reactive than haloalkanes toward nucleophilic substitution because the C–X bond in aryl halides has partial double-bond character (resonance stabilisation) and the aromatic ring repels nucleophiles due to its electron-rich π\pi-system. The net effect is that SN1 and SN2 pathways are both strongly disfavoured.

The core idea: why aryl halides resist nucleophilic attack

Nucleophilic substitution requires the nucleophile to approach the carbon bearing the leaving group. In haloarenes, two fundamental obstacles block this approach — one electronic, one structural. Understanding these explains why you cannot simply treat an aryl halide like an alkyl halide.

1. Resonance stabilisation gives the C–X bond partial double-bond character

In chlorobenzene (the simplest haloarene), the lone pairs on chlorine participate in resonance with the aromatic ring. One of the three resonance structures places a double bond between the ring carbon and chlorine, with a positive charge on the ortho position:

Resonance hybrid: CX6HX5−Cl↔CX6HX5X+=ClX−\text{Resonance hybrid: } \ce{C6H5-Cl} \leftrightarrow \ce{C6H5^{+}=Cl^{-}}

This delocalisation means the C–Cl bond is not a pure single bond — it has about 10–15% double-bond character. A double bond is shorter and stronger than a single bond. To break it in a substitution reaction, you must overcome this extra stabilisation.

The bond dissociation energy for C–Cl in chlorobenzene is about 400 kJ/mol, compared to roughly 340 kJ/mol in chloroethane. That extra 60 kJ/mol is a significant activation barrier.

Watch out

A common mistake is to think that resonance increases the polarity of the C–X bond, making the carbon more electrophilic. In fact, resonance decreases the partial positive charge on carbon because the π\pi-electron density from the ring is shared with the halogen. The carbon becomes less electrophilic, not more.

2. The aromatic ring is electron-rich and repels nucleophiles

The benzene ring has a delocalised π\pi-electron cloud above and below the plane. Any nucleophile (itself electron-rich) approaching the ring carbon experiences electrostatic repulsion from this cloud. This is not a minor effect — it is the same reason benzene undergoes electrophilic substitution rather than nucleophilic substitution.

For an SN2 reaction, the nucleophile must attack from the back side of the C–X bond, along the axis of the σ∗\sigma^* orbital. In a planar aryl halide, this trajectory is blocked by the π\pi-electron density of the ring. The nucleophile simply cannot get close enough to the carbon without severe repulsion. …

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