Answer:
Explanation:
Given data:
Mass of calcium oxide = 14.4 g
Mass of carbon dioxide = 13.8 g
Actual yield of calcium carbonate = 19.4 g
Mass of calcium carbonate produced = ?
Limiting reactant = ?
Percent yield = ?
Chemical equation:
CaO + CO₂  → CaCO₃
Number of moles of CaO:
Number of moles of CaO = Mass /molar mass
Number of moles of CaO = 14.4 g / 56.1g/mol
Number of moles of CaO = 0.26 mol
Number of moles of COâ‚‚:
Number of moles of COâ‚‚= Mass /molar mass
Number of moles of COâ‚‚ = 13.8 g / 44 g/mol
Number of moles of COâ‚‚ = 0.31 mol
Now we will compare the moles of CaCO₃ with CO₂ and CaO.
         CaO      :        CaCO₃
          1        :         1
         0.26      :       0.26
         CO₂      :         CaCO₃
         1         :         1
         0.31       :        0.31
The number of moles of CaCO₃ produced by CaO are less it will be limiting reactant.
Limiting reactant:
CaO
Theoretical yield:
Mass of CaCO₃ = moles × molar mass
Mass of  CaCO₃ = 0.26 mol × 100 g/mol
Mass of  CaCO₃ =  26 g
Percent yield:
Percent yield = Actual yield / theoretical yield × 100
Percent yield = 19.4 g/ 26 g× 100
Percent yield = 74.6 %
