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10 January, 18:40

For the reaction represented by the equation pb (no3) 2 + 2ki → pbi2 + 2kno3, how many moles of lead (ii) iodide are produced from 300. g of potassium iodide and an excess of pb (no3) 2?

a. 11.0 mol selected:

b. 1.81 mol

c. 3.61 mol

d. 0.904 mol

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  1. 10 January, 22:18
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    Number of moles equals of potassium iodide;

    The molar mass of potassium iodide is 166 g/mole

    Moles = 300/166

    = 1.8072moles

    According to the equation;

    2 moles of KI produces 1 mole of PbI2 9lead (ii) iodide

    Therefore; the number of moles of lead (ii) iodide produced will be;

    = 1.8072/2

    = 0.9036moles

    Thus the number of moles of lead (ii) iodide is 0.904 mole
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