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19 December, 00:34

If a solution of lead iodine has [i-] = 1.1x10-4 m, what is the lead (ii ion concentration at equilibrium?

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  1. 19 December, 01:06
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    Lead (II) iodide is Pb I2 (the digit 2 is a subscript to the right of the symbol of iodine, I).

    Pb I2 is a solid ionic compound.

    Then, it ionizes in solution as per Pb I2 → Pb (2+) + 2I (1-)

    That means that there are 2 ions of I (1-) per each ion of Pb (2+).

    Then, if the concentration of I (1-) is 1 * 10 ^-4m, the concentration of Pb (2+) is half 1 * 10 ^ - 4 m.

    That is 0.5 * 10^-4m = 5.0 * 10^-5 m

    Answer: 5.0 * 10^ - 5 m
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