Answer: The final concentration of [tex]OH^−[/tex] is 0.8 M.
Explanation: [tex]NaOH\rightarrow Na^++OH^-[/tex]
[tex]{\text{Moles of NaOH}}=Molarity\times {\text{Volume of solution in liters}}[/tex]
[tex]{\text{Moles of NaOH}}=2M\times 0.08L=0.16moles[/tex]
0.06 moles of NaOH will give 0.06 moles of [tex][OH^-][/tex]
[tex]HCl\rightarrow H^++Cl^-[/tex]
[tex]{\text{Moles of HCl}}=Molarity\times {\text{Volume of solution in liters}}[/tex]
[tex]{\text{Moles of HCl}}=4.0M\times 0.02L=0.08moles[/tex]
0.08 moles of HCl will give 0.08 moles of [tex][H^+][/tex]
[tex]HCl+NaOH\rightarrow NaCl+H_2O[/tex]
0.08 moles of [tex]H^+[/tex] will react with 0.08 moles of [tex]OH^-[/tex] and (0.16-0.08)= 0.08 moles of [tex]OH^-[/tex] will be left in 100 ml of solution.
Thus Molarity of [tex][OH^]-=\frac{moles}{\text {Volume in L}}=\frac{0.08}{0.1}=0.8M[/tex]
