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Question

Q.The compound which undergoes SN1S_N1 reaction most rapidly is :
(A) 3-Bromocyclohex-1-ene (C6H9BrC_6H_9Br — cyclohexene ring with Br on the allylic carbon)
(B) (Bromomethyl)cyclohexane (C6H11CH2BrC_6H_{11}CH_2Br — cyclohexane ring−CH2−-CH_2-Br)
(C) Bromocyclohexane (C6H11BrC_6H_{11}Br)
(D) Bromobenzene (C6H5BrC_6H_5Br)

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The key idea is that SN1S_N1 reactivity depends on carbocation stability. The allylic carbocation formed from 3-bromocyclohex-1-ene is resonance-stabilized, making it the most stable and thus the fastest in SN1S_N1 conditions. The correct option is (A).

Why SN1S_N1 Reactivity Order Matters

SN1S_N1 reactions proceed through a two-step mechanism: first, the leaving group departs to form a carbocation intermediate; second, the nucleophile attacks this carbocation. The rate-determining step is the first step — carbocation formation. So the faster a molecule can form a stable carbocation, the faster it undergoes SN1S_N1 reaction.

This means we don't look at steric hindrance or nucleophile strength here. We look purely at carbocation stability. The more stable the carbocation intermediate, the lower the activation energy for its formation, and the faster the reaction.

Let's examine each compound.

  1. Compound (A): 3-Bromocyclohex-1-ene

    The bromine is on the allylic carbon — the carbon adjacent to the double bond. When the Br leaves, the resulting carbocation is allylic.

    An allylic carbocation is resonance-stabilized: the positive charge can be delocalized into the adjacent π\pi bond. This gives two resonance structures, spreading the charge over two carbons.

    Resonance stabilization of an allylic carbocation:

    CHX2=CH−CHX2X+↔+ CHX2−CH=CHX2\ce{CH2=CH-CH2+ <-> +CH2-CH=CH2}

    This delocalization significantly lowers the energy of the carbocation, making it much more stable than a simple secondary or tertiary alkyl carbocation.

  2. Compound (B): (Bromomethyl)cyclohexane

    Here the bromine is on a primary carbon (the CH2_2 group attached to the ring). If Br leaves, we get a primary carbocation — RCHX2X+\ce{RCH2+}.

    Primary carbocations are highly unstable (no alkyl groups to donate electron density via hyperconjugation, no resonance). They are so unstable that SN1S_N1 reactions on primary substrates are essentially impossible under normal conditions. This compound would react via SN2S_N2, not SN1S_N1.

  3. Compound (C): Bromocyclohexane

    The bromine is on a secondary carbon of the cyclohexane ring. Loss of Br gives a secondary carbocation.

    Secondary carbocations are moderately stable — they have two alkyl groups providing hyperconjugative stabilization — but they are far less stable than an allylic carbocation. No resonance is possible here.

  4. Compound (D): Bromobenzene

    The bromine is directly attached to an aromatic ring. If Br leaves, we would get a phenyl carbocation — a positive charge on an sp2sp^2 carbon of the benzene ring. …

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