How much energy in kJ is released when 10.21 g of aluminum react with an excess of copper oxide?
3 CuO + 2 Al -> 3 Cu + Al2O3
△ H
= 1190 kJ/mol
The balanced thermochemical equation:
3CuO + 2Al → 3Cu + Al2O3, △H = 1190 kJ/mol
The equivalences for this thermochemical equation are:
3 mol CuO ⇔ 2 mol Al ⇔ 3 mol Cu ⇔ 1 mol Al2O3 ⇔ +1190 kJ
Convert the amount of aluminum (Al) to moles:
10.21 g Al × (1 mol Al / 26.981 g Al) = 0.3784 mol Al
Use the thermochemical equation to determine the energy change:
0.3784 mol Al × (1190 kJ / 2 mol Al) = 225.15 kJ
Answer: 225.15 kJ of energy is released.
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