Answer:
15.23 L
Solution:
The balanced chemical equation is as,
CaCO₃ → CaO + CO₂
As at STP one mole of any gas (Ideal gas) occupies exactly 22.4 L of Volume. Therefore, According to equation,
100 g ( 1 mol) CaCO₃ produces = 22.4 L (1 mol) of CO₂
So,
68 g CaCO₃ will produce = X L of CO₂
Solving for X,
X = (68 g × 22.4 L) ÷ 100 g
X = 15.23 L of CO₂