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Question

The solubility of CaF2(Ksp=3.4×1011) in 0.1 M solution of NaF would be:

A
3.4×1012M
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B
3.4×1010M
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C
3.4×109M
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D
3.4×1013M
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Solution

The correct option is C 3.4×109M
CaF2Ca2++2F x 2xNaFNa+0.1+F0.1[Ca2+]=x,[F]=[2x+0.1]=0.1 MKsp=[Ca2+][F]23.4×1011=x(0.1)2x=3.4×109M

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