Answer:
option (d) is false.
Explanation:
Acid dissociation equilibrium of HCN is represented as-
[tex]HCN\rightleftharpoons H^{+}+CN^{-}[/tex]
Acid dissociation constant, [tex]K_{a}[/tex], is represented as-
[tex]K_{a}=\frac{[H^{+}][CN^{-}]}{[HCN]}[/tex]
where species inside third bracket represents equilibrium concentrations of respective species
So, evidently, presence of excess [tex]CN^{-}[/tex] (or NaCN) in solution will combine with [tex]H^{+}[/tex] to produce HCN. Hence [tex]H^{+}[/tex] will be larger that it would be if only the HCN solution were present.
According to Le-chatlier principle, addition of HCN will shift equilibrium towards right and addition of NaCN will shift equilibrium towards left to keep constant [tex]K_{a}[/tex] value at a particular temperature.
NaOH gives acid-base reaction with HCN to produce NaCN and water. So, addition of NaOH will increase concentration of [tex]CN^{-}[/tex] and decrease concentration of HCN
