Q.(a) Addition of HBr to propene to yield α-Bromopropene is an ionic electrophilic addition reaction. Justify.
[Marks: 2+2+1=5] OR
[Marks: 2+2+1=5]
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Start your 14-day free trial to unlock the full solution →(a) HBr adds to propene via a carbocation intermediate (Markovnikov addition), formed by electrophilic attack of H+. (b) 1,2-Dibromoethane is reduced to ethane using Zn/dilute HCl. (c) Branching lowers boiling point by reducing van der Waals contact between molecules.
(a) HBr addition to propene as ionic electrophilic addition:
Propene, CH2=CH-CH3, has an electron-rich C=C double bond. In the first step, the electrophile H+ (from HBr) is attracted to and attacks this pi-electron cloud, adding to the LESS substituted carbon (C1, terminal CH2) so that the positive charge ends up on the MORE substituted carbon -- this generates the more stable SECONDARY carbocation, CH3-CH+-CH3 (rather than the less stable primary carbocation that would form if H+ added the other way), in accordance with Markovnikov's rule.
In the second step, the bromide ion, Br- (a nucleophile), which was released from HBr, attacks this electron-deficient carbocation, bonding to it to give the final product, 2-bromopropane: CH3-CHBr-CH3.
Because the reaction proceeds through discrete, fully-formed CHARGED intermediates (a carbocation, then anion attack) rather than through neutral radicals, and because it is INITIATED by an electrophile attacking the electron-rich double bond, it is correctly described as an ionic electrophilic addition reaction.
(b) Converting 1,2-dibromoethane to ethane:
Simply removing both bromines with zinc dust ALONE (Zn dust, no acid) would eliminate them together as Br2 or via a beta-elimination pathway to give ethene (an alkene), not ethane. To instead REPLACE each C-Br bond with a C-H bond (reduction, not elimination), 1,2-dibromoethane is treated with zinc dust and dilute hydrochloric acid (or a zinc-copper couple in ethanol), which generates nascent hydrogen, [H]:
BrCH2-CH2Br + 4[H] --Zn / dil. HCl--> CH3-CH3 (ethane) + 2 HBr
Each C-Br bond is reductively replaced by a C-H bond, giving ethane as the final product.
(c) Effect of branching on boiling point: …
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