Fe\(_2\)O\(_{3(s)}\) + 2Al\(_{(s)}\) → Al\(_2\)O\(_3\) + 2Fe\(_{(s)}\). If the heats of formation of Al\(_2\)O\(_3\) and Fe\(_2\)O\(_3\) are - 1670 kJmol\(^{-1}\) and - 822 kJmol\(^{-1}\) respectively, the enthalpy change in kJ for the reaction is ?
a
+2492
b
+848
c
-848
d
-2492
Explanation
Correct Option
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Discussions (10)

MhizDee430
10 months ago
I'm shocked 😳
How many persons are actually doing the calculation???
-1670+882 =-788
So where is this -848 coming from??

Nuelzyyy
11 years ago
Delta H(energy changes) =heat of products - heat content of reactants .....
Going with dat....Energy cahange =(-1670) - (-822) = -848

