Is $lead(II) sulfide$ $"lead(II) sulfide"$ soluble in aqueous solution? How would we represent the reaction?

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Is $lead(II) sulfide$ $"lead(II) sulfide"$ soluble in aqueous solution? How would we represent the reaction?

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Answer 1 · 2016-07-09T19:36:05

$P b S (s) ⇌ P b^{2 +} + S^{- 2}$ $PbS(s) rightleftharpoonsPb^(2+) + S^(-2)$

Explanation:

The given equilibrium lies strongly to the left, as $P b S$ $PbS$ is very insoluble. Nevertheless, the ions in solution are $P b^{2 +}$ $Pb^(2+)$ and $S^{2 -}$ $S^(2-)$ . The extent of the equilibrium could be measured if we know $K_{s p}$ $K_(sp)$ for lead sulfide.

This site reports that $K_{s p} = 9.04 \times 10^{29}$ $K_(sp)=9.04xx10^29$ for $P b S$ $PbS$ , which is truly a low number.

Of course in the solid state, we would say that $P b S$ $PbS$ is composed of $P b^{2 +}$ $Pb^(2+)$ and $S^{2 -}$ $S^(2-)$ ions.

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Is $lead(II) sulfide$ $"lead(II) sulfide"$ soluble in aqueous solution? How would we represent the reaction?

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Is "lead(II) sulfide"lead(II) sulfide"lead(II) sulfide" soluble in aqueous solution? How would we represent the reaction?

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Explanation:

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Is $lead(II) sulfide$ $"lead(II) sulfide"$ soluble in aqueous solution? How would we represent the reaction?