Answer : Option C) 6.3 X [tex] 10^{-5} [/tex].
Explanation : Given is the concentration of benzoic acid is 0.200 M, now only one monoprotic acid ion is getting separated from it [[tex][ H^{+} ][/tex].
So, the reaction will be as,
[tex]H C_{7} H_{6}O_{2} [/tex] ⇔ [tex][ H^{+} ][/tex] + [tex]C_{7} H_{6}O_{2} [/tex] .
We can use the ICE method for calculation,
The molar concentration of [tex]H C_{7} H_{6}O_{2} [/tex] is 0.200 M and the [[tex][ H^{+} ][/tex] is 3.55 X [tex] 10^{-5} [/tex].
So here on reactant side we get, (0.2 - 3.55 X [tex] 10^{-5} [/tex]) = 0.196
on the product it remains as 3.55 X [tex] 10^{-5} [/tex].
So, [tex] K_{a}[/tex] = (3.55 X [tex] 10^{-5} [/tex]) X (3.55 X [tex] 10^{-5} [/tex]) / 0.196
We will get [tex] K_{a}[/tex] as 6.42 X [tex] 10^{-5} [/tex] which is close to 6.3 X [tex] 10^{-5} [/tex].
