Given: Compound X has molecular formula C3H6Cl2. On treatment with excess NaNH2 it gives compound Y. Compound Y on hydration with dilute H2SO4 and Hg2+ gives compound Z, and on passing through a red hot iron tube gives compound Q.
Find: Whether Statement I and Statement II are true.
From the given reaction sequence, X=C3H6Cl2 is a vicinal or geminal dihalide. Excess NaNH2 causes double dehydrohalogenation, so compound Y is propyne.
Y=propyne (CH3C≡CH)Propyne undergoes acid-catalysed hydration in the presence of Hg2+. Hydration of a terminal alkyne gives a methyl ketone. Therefore compound Z is acetone.
Z=acetone (CH3COCH3)
Acetone gives a yellow precipitate of iodoform with NaOI. Hence Statement I is true.
When propyne is passed through a red hot iron tube, it undergoes cyclotrimerisation to form mesitylene, that is 1,3,5-trimethylbenzene.
Q=mesitylene (C9H12)In mesitylene, the number of aromatic hydrogens is 3 and the number of aliphatic hydrogens from three CH3 groups is 9.
Aromatic : Aliphatic=3:9=1:3
Hence Statement II is true.
Therefore, both Statement I and Statement II are true. The correct option is A.