Question #fb741

1 Answer
Chuck W.
Mar 15, 2016

The first part of the question allows you to determine K_(sp), and the second allows you to use K_(sp) to find the solubility of CaCl_2 in the presence of a common ion (Cl^-).

Explanation:

The balanced reaction for ionization of CaCl_2 is

CaCl_2(s) harr Ca^(2+)(aq) + 2 Cl^(-)(aq)
K_(sp) = [Ca^(2+)][Cl^-]^2

If [Cl^-]=2 times 10^-6M then [Ca^(2+)] = 1 times 10^-6M and
K_(sp) = 4 times 10^-18

For the second part, the BaCl_2 produces [Cl^-]=10^(-2)M
Therefore, [Ca^(2+)] = K_(sp)/([Cl^-]^2) = 4 times 10^(-14)M

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