The combustion of benzene (l) gives CO2(g) and H2O(l). Given that the heat of combustion of benzene at constant volume is —3263.9 kJmol−1 at 25∘C. The heat of combustion (inkJmol−1) of benzene at constant pressure will be: (R=8.314JK−1mol−1)
A
-3267.6
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B
4152.6
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C
-452.46
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D
3260
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Solution
The correct option is A -3267.6 C6H6(l)+152O2(g)→6CO2(g)+3H2O(l) Here, Δng=6−152=−32 We know, ΔH=ΔU+ΔngRT ΔH=(−3263900−32×8.314×298)J =−3267616J=−3267.6kJ