Answer:
The heat of the reaction = -4819 kJ (option B)
Explanation:
Step 1: Data given
Mass of octane = 100.0 grams
The molar mass of octane is 114.33 g/mol
The molar mass of oxygen is 31.9988 g/mol
ΔH°rxn = -11018 kJ
Step 2: The balanced equation
2 C8H18 + 25 O2 → 16 CO2 + 18 H2O Hrxn = -11018kJ
Step 3: Calculate moles octane
Moles octane = mass octane / molar mass octane
Moles octane = 100.0 grams / 114.33 g/mol
Moles octane = 0.8747 moles
Since the reaction says for 2 moles octane Hrxn = -11018kJ
For 1 mol octane:
2 8H18 + 12.5 O2 → 8 CO2 + 9 H2O Hrxn = -11018 /2 = -5509 kJ/mol
The heat of the reaction = 0.8747 moles * -5509 kJ/mol
The heat of the reaction = -4819 kJ (option B)