The value of the Solubility Product Constant for lead phosphate is ____________

Write the reaction that corresponds to this Ksp value.

_______(Aq,S,L) +_______(Aq,S,L) <-------->_______(Aq,S,L) +_______(Aq,S,L)

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Answer: The reaction for the [tex]K_{sp}[/tex] value of lead phosphate is given below and the value of solubility product for the same is [tex]3.0\rightarrow 10^{-44}[/tex]

Explanation:

Solubility product is defined as the product of concentration of ions present in a solution each raised to the power its stoichiometric ratio. It is expressed as [tex]K_{sp}[/tex]

The chemical formula of lead phosphate is [tex]Pb_3(PO_4)_2[/tex]

The equation for the hydration of the lead phosphate is given as:

[tex]Pb_3(PO_4)_2(s)+H_2O(l)\rightarrow 3Pb^{2+}(aq.)+2PO_4^{3-}(aq.)[/tex]

The solubility product of lead phosphate is [tex]3.0\rightarrow 10^{-44}[/tex]. This means that it is highly insoluble in water as the solubility product is very very low.

Hence, the reaction for the [tex]K_{sp}[/tex] value of lead phosphate is given above and the value of solubility product for the same is [tex]3.0\rightarrow 10^{-44}[/tex]