Neet Solved Paper 2015 Question 26

Question: The $ K _{sp} $ of $ Ag _2CrO _4,,AgCl,,AgBr $ and $ AgI $ are respectively, $ 1.1\times {10^{-12}},1.8\times {10^{-10}} $ $ 5.0\times {10^{-13}},8.3\times {10^{-17}} $ . Which one of the following salts will precipitate last if $ AgNO _3 $ solution is added to the solution containing equal moles of $ NaCl,NaBr,NaI $ and $ Na _2CrCO _4 $ ?

Options:

A) $ Agl $

B) $ AgCl $

C) $ AgBr $

D) $ Ag _2CrO _4 $

Show Answer

Answer:

Correct Answer: D

Solution:

  • $ Ag _2CrO _42A{g^{+}}+CrO_4^{2-} $ Solubility product $ K _{sp}={{(2s)}^{2}}\times s=4s^{3} $ $ K _{sp}=(1.1\times {10^{-12}}) $ $ S=\sqrt[3]{\frac{K _{sp}}{4}},=0.65\times {10^{-4}} $ $ AgClA{g^{+}}+C{l^{-}} $ $ K _{sp}=S\times S $ $ (K _{sp}=1.8\times {10^{-10}}) $ $ S=\sqrt{K _{sp}},=1.34\times {10^{-5}} $ $ AgBr,A{g^{+}}+B{r^{-}} $ $ K _{sp}=S\times S $ $ (K _{sp}=5\times {10^{-13}}) $ $ S=\sqrt{K _{sp}}=0.71\times {10^{-6}} $ $ AgIA{g^{+}}+{I^{-}} $ $ K _{sp}=S\times S $ $ (K _{sp}=8.3\times {10^{-17}}) $ $ S=\sqrt{K _{sp}}=0.9\times {10^{-8}} $ $ \because $ Solubility of $ Ag _2CrO _4 $ is highest. So, it will precipitate last.