The molar enthalpy of combustion for ethane, in an open-air environment, is −1428.4kJ/mol. ?

a.
C₂H₆ + (7/2)O₂ → 2CO₂ + 3H₂O     ΔH = -1428.4 kJ

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b.
When 2 mol of CO₂ is formed, the enthalpy change is -1428.4 kJ.
The molar enthalpy of reaction for CO₂ = (-1428.4 kJ) / (2 mol)= -714.2 kJ/mol

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c.
Moles of CO₂ produced = (25.0 × 10⁶ J) / (714.2 × 10³ J/mol) = 35.0 mol
Molar mass of CO₂ = (12.0 + 16.0×2) g/mol = 44.0 g/mol
Mass of CO₂ produced = (35.0 mol) × (44.0 g/mol) = 1540 g