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AP Chemistry
7.11 Introduction to Solubility Equilibria
IntermediateMCQMathematical24.7k
A student prepares a saturated aqueous solution of silver chromate, \(\text{Ag}_2\text{CrO}_4\), by adding excess solid to pure distilled water at a constant temperature. The dissolution equilibrium and its solubility product constant, \(K_{sp}\), are represented below.

\[ \text{Ag}_2\text{CrO}_4(s) \rightleftharpoons 2\text{Ag}^+(aq) + \text{CrO}_4^{2-}(aq) \quad\quad K_{sp} = 4.0 \times 10^{-12} \]

Based on the information above, what is the molar solubility of \(\text{Ag}_2\text{CrO}_4(s)\) in pure water at this temperature?

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