Answer:
Methanol is more acidic than the alkyne and will be deprotonated instead.
Explanation:
[tex]pK_{a}[/tex] of methanol is around 15 and [tex]pK_{a}[/tex] of terminal alkyne is around 26.
[tex]pK_{a}=-logK_{a}[/tex], where [tex]K_{a}[/tex] is acid dissociation constant
So, higher the acidity of an acid, higher will its [tex]K_{a}[/tex] value and thereby lower will be its [tex]pK_{a}[/tex] value.
So, methanol is certainly stronger acid than terminal alkyne.
Hence sodium amide preferably deprotonates methanol instead of terminal alkyne.
Hence, option (A) is correct.
