Consider the following reaction:

The product formed is:
- A
2-methylhex-3-yne
- B
2-methylhex-2-yne
- C
5-methylhex-2-yne
- D
Isopropylbut-1-yne
Consider the following reaction:

The product formed is:
2-methylhex-3-yne
2-methylhex-2-yne
5-methylhex-2-yne
Isopropylbut-1-yne
Correct answer:C
Standard Method
Given: A vicinal dibromide is treated with excess to form intermediate , and then with followed by isopropyl bromide to form .
Find: The product .
Vicinal dihalides give alkynes on treatment with excess , and terminal alkynes can be alkylated through acetylide ion formation.
Step 1: Formation of alkyne intermediate .
The given compound is a vicinal dibromide. On treatment with excess sodium amide , double dehydrohalogenation occurs, leading to the formation of a terminal alkyne .
Step 2: Formation of acetylide ion.
The terminal alkyne reacts with to form a sodium acetylide ion due to the acidic nature of the terminal hydrogen.
Step 3: Alkylation of acetylide ion.
The acetylide ion undergoes nucleophilic substitution with isopropyl bromide, resulting in carbon–carbon bond formation and chain extension.
Step 4: Identify the final product.
The alkylation introduces an isopropyl group at the terminal carbon of the alkyne, giving the final product:
Therefore, the correct option is C.
Assuming the vicinal dibromide gives an alkene after one elimination and stopping there is incorrect, because excess causes double dehydrohalogenation. Continue the reaction to the alkyne stage before identifying .
Missing the formation of the acetylide ion is incorrect, because a terminal alkyne reacts further with due to its acidic terminal hydrogen. Convert the terminal alkyne into its sodium acetylide before considering alkylation.
Placing the isopropyl group at the wrong carbon gives an incorrect name, because alkylation occurs at the terminal acetylide carbon through carbon–carbon bond formation. First extend the chain, then assign the longest chain and number the alkyne correctly.
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