Chapter 17: Problem 28
Why do we usually not quote the \(K_{\text {sp }}\) values for soluble ionic compounds?
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Chapter 17: Problem 28
Why do we usually not quote the \(K_{\text {sp }}\) values for soluble ionic compounds?
These are the key concepts you need to understand to accurately answer the question.
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The \(\mathrm{p} K_{\mathrm{b}}\) s for the bases \(\mathrm{X}^{-}, \mathrm{Y}^{-},\) and \(Z^{-}\) are 2.72 \(8.66,\) and \(4.57,\) respectively. Arrange the following acids in order of increasing strength: HX, HY, HZ.
Write balanced equations and solubility product expressions for the solubility equilibria of these compounds: (a) \(\mathrm{CuBr},\) (b) \(\mathrm{ZnC}_{2} \mathrm{O}_{4},\) (c) \(\mathrm{Ag}_{2} \mathrm{CrO}_{4}\) (d) \(\mathrm{Hg}_{2} \mathrm{Cl}_{2}\) (e) \(\mathrm{AuCl}_{3}\) (f) \(\mathrm{Mn}_{3}\left(\mathrm{PO}_{4}\right)_{2}\).
Calculate \(x\), the number of molecules of water in oxalic acid hydrate, \(\mathrm{H}_{2} \mathrm{C}_{2} \mathrm{O}_{4} \cdot x \mathrm{H}_{2} \mathrm{O},\) from the following data: \(5.00 \mathrm{~g}\) of the compound is made up to exactly \(250 \mathrm{~mL}\) solution and \(25.0 \mathrm{~mL}\) of this solution requires \(15.9 \mathrm{~mL}\) of \(0.500 \mathrm{M} \mathrm{NaOH}\) solution for neutralization.
The \(\mathrm{p} K_{\mathrm{a}}\) of phenolphthalein is \(9.10 .\) Over what \(\mathrm{pH}\) range does this indicator change from \(95 \%\) HIn to \(95 \% \mathrm{In}^{-} ?\)
In a group 1 analysis, a student obtained a precipitate containing both \(\mathrm{AgCl}\) and \(\mathrm{PbCl}_{2}\). Suggest one reagent that would allow her to separate \(\operatorname{AgCl}(s)\) from \(\mathrm{PbCl}_{2}(s)\)
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