An optically active compound A, C6H10O2, when dissolved in NaOH solution, consumed one equivalent of base. On acidification, com
pound A was slowly regenerated. Treatment of A with LiAlH4 in ether followed by protonolysis gave an optically inactive compound B that reacted with acetic anhydride to give an acetate diester derivative C. Compound B was oxidized by aqueous chromic acid to β-methylglutaric acid (3-methylpentanedioic acid), D. Identify compounds A, B, and C; do not specify stereochemistry. (The absolute stereochemical configurations of chiral substances cannot be determined from the data.)
1 answer:
Answer:
A = β-methyl-δ-valerolactone; B = 3-methylpentane-1,5- diol;
C = 3-methylpentane-1,5- diol diacetate
Explanation:
1. Calculate the unsaturation value
The formula for a 6-carbon would be C₆H₁₄.
U = (14 - 10)/2 = 4/2 = 2
The compound has two rings and/or double bonds.
2. Compound B
Treatment of Compound B with acetic anhydride gave a diacetate.
B must be a diol.
Oxidation of compound B gives β-methylglutaric acid.
Compound B must be 3-methylpentane-1,5-diol.
3. Compound A
Compound A reacted slowly with NaOH to form a compound that slowly regenerated Compound A on acidification.
It could be an ester. However, it must be an internal ester (a lactone), because all six carbons are in the diol.
The most likely structure for A is β-methyl-δ-valerolactone.
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