Answer : The percentage aniline protonated is, 0.0209 %
Explanation :
First we have to calculate the pOH.
[tex]pH+pOH=14\\\\pOH=14-pH\\\\pOH=14-8.32\\\\pOH=5.68[/tex]
Now we have to calculate the hydroxide ion concentration.
[tex]pOH=-\log [OH^-][/tex]
[tex]5.68=-\log [OH^-][/tex]
[tex][OH^-]=2.09\times 10^{-6}M[/tex]
The equilibrium chemical reaction will be:
[tex]NH_3+H_2O\rightleftharpoons NH_4^++OH^-[/tex]
From the reaction we conclude that,
Concentration of [tex]OH^-[/tex] ion = Concentration of [tex]NH_4^+[/tex] ion = [tex]2.09\times 10^{-6}M[/tex]
Now we have to calculate the percentage aniline protonated.
[tex]\text{percentage aniline protonated}=\frac{2.09\times 10^{-6}M}{0.010M}\times 100[/tex]
[tex]\text{percentage aniline protonated}=0.0209\%[/tex]
Thus, the percentage aniline protonated is, 0.0209 %
