Respuesta :

Hagrid
The anode compartment contains [SO2-4] with a concentration of 1.30 m, this is in equilibrium with PbSO4 (s). The dissociation of PbSO4 is:

PbSO4 + H2O ---> Pb 2+ + SO4 2-

The Ksp of PbSO4:

Ksp = [Pb2+] [SO4-2] 

Answer:

The solubility product lead sulfate at anode is 1.69.

Explanation:

[tex]PbSO_4\rightleftharpoons Pb^{2+}+SO_4^{2-}[/tex]

                    S      S

Concentration of sulfate ion at anode:

[tex][SO_4^{2-}]=S=1.30 M[/tex]

1 mole of lead sulfate dissociates into 1 mol of lead ion and 1 mole of sulfate ion.So.

[tex]SO_4^{2-}=[Pb^{2+}]=S[/tex]

The solubility product of the lead sulfate is:

[tex]K_{sp}=S\times S=S^2=(1.30 M)^2=1.69[/tex]

The solubility product lead sulfate at anode is 1.69.

Otras preguntas