Respuesta :
Answer:
Precipitation will occur after the concentration of fluoride ions exceeds 0.01 M.
4 mL volume of NaF must be added to cause [tex]BaF_2[/tex] to precipitate.
Explanation:
Concentration of barium ions = [tex][Ba^{2+}]=0.016 M[/tex]
Volume of barium ion solution = 2.0 L
[tex]BaF_2\rightleftharpoons Ba^{2+}+2F^-[/tex]
The solubility product of the barium fluoride = [tex]K_{sp}=1.6\times 10^{-6}[/tex]
[tex]K_{sp}=[Ba^{2+}][F^-]^2[/tex]
[tex]1.6\times 10^{-6}=[0.016 M]\times [F^-]^2[/tex]
[tex][F^-]=0.01 M[/tex]
Precipitation will occur after the concentration of fluoride ions exceeds 0.01 M.
Concentration of fluoride ion = [tex]C_1=0.01 M[/tex]
Volume of solution = [tex]V_1=2.0 L[/tex]
Concentration of NaF solution added = [tex]C_2=5.0 M[/tex]
Volume of NaF solution added = [tex]V_2=?[/tex]
[tex]C_1V_1=C_2V_2[/tex]
[tex]V_2=\frac{0.01 M\times 2.0 L}{5.0 M}=0.004L[/tex]
1 L = 1000 mL
0.004 L = 0.004 × 1000 mL = 4 mL
4 mL volume of NaF must be added to cause [tex]BaF_2[/tex] to precipitate.
