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Question

Calculate the mass of oxygen produced when 2.45 g of KO2 and 4.44 g of CO2 react.
KO2+CO2K2CO3+O2 (yield = 80 %)
(Molar mass of K = 39 g/mol)

A
1.11 g
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B
0.14 g
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C
2.05 g
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D
0.65 g
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Solution

The correct option is D 0.65 g
4KO2+2CO22K2CO3+3O2

Moles of KO2=given massmolar mass=2.4571=0.034 molMoles of CO2=given massMolar mass=4.4444=0.100 mol

Finding the limiting reagent:
For KO2=given molesstoichiometric coefficient=0.0085 molFor CO2=0.12=0.05 mol
So, KO2 is the limiting reagent.
4 moles of KO2 produces 3 moles of O2
0.034 mol will form =34×0.034=0.0255 mol

Mass of oxygen formed = 0.0255 mol×32 g/mol=0.816 g
But, the yield of the reaction is 80%

Actual amount of oxygen formed = 0.816 g ×80100=0.65 g

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