Answer:
0.3025 moles of CO₂ are produced
Explanation:
Reaction is: Na₂CO₃ (aq) + 2 HF (aq) → H₂O (l) + CO₂ (g) + 2 NaF (aq)
It is correctly ballanced.
If the given information stays that the excess amount is on the sodium carbonate, the HF is the limiting reagent.
We see that stoichiometry is 2:1. Moles of produced CO2, will be the half, than the original amount, we have.
Firste step: We convert the mass to moles
12.1 g . 1mol / 20g = 0.605 moles of HF
2 moles of HF can produce 1 mol of CO₂
0.605 moles of HF will produce (0.605 . 1) /2 = 0.3025 moles of CO₂
