Q.19
Structure of the compound Y in the following reaction sequence is:
Cyclohexene →(Br2 / AcOH)→ X →(KOtBu)→ Y
Structure of Compound Y in Bromination and Elimination Reaction Sequence
Understanding the structure of compound Y reaction sequence bromination elimination is a common organic chemistry concept.
When an alkene reacts with bromine followed by a strong base such as KOtBu, halogen addition occurs first and then elimination produces multiple double bonds.
Let us solve this step-by-step.
Given Reaction
Cyclohexene + Br2 / AcOH → X
X + KOtBu → Y
Find the structure of compound Y.
Step 1: Bromination of Alkene
Reagent:
Br2 in acetic acid (AcOH)
Concept:
- Halogen adds across C=C double bond
- Anti-addition takes place
- Forms vicinal dibromide
Product formed (X):
1,2-dibromocyclohexane
Step 2: Reaction with KOtBu
Reagent Nature:
- Strong base
- Bulky base
- Favors E2 elimination
What happens?
- First elimination removes one HBr → forms bromo-alkene
- Second elimination removes another HBr → forms second double bond
Final product:
1,3-cyclohexadiene
Final Answer
Y = 1,3-Cyclohexadiene → Option (C)
Explanation of All Options
| Option | Structure | Reason |
|---|---|---|
| (A) | Bromocyclohexene | Only one elimination. Reaction actually undergoes double elimination. |
| (B) | Cyclohexene | Starting compound, not final product. |
| (C) | 1,3-Cyclohexadiene | Two eliminations form two double bonds. Correct answer. |
| (D) | Benzene | Requires aromatization/oxidation, not possible by simple elimination. |
Important Exam Concepts
- Vicinal dihalide + strong base → double elimination
- E2 elimination removes HX
- Two HX removals → two double bonds
- Strong bulky bases favor elimination over substitution
Quick Memory Trick
Two halogens + strong base = two eliminations → diene formation
Conclusion
Cyclohexene first forms a vicinal dibromide with bromine. Treatment with KOtBu causes two successive E2 eliminations, producing
1,3-cyclohexadiene. Therefore, the correct structure of compound Y is Option (C).
