Answer:
Enthalpy change = -44.12 kJ
Explanation:
Given:
ΔH°f(C2H6O(l)) = -277.69 kj/mol
ΔH°f(C2H4(g)) = 52.26 kj/mol
ΔH°f(H2O) = -285.83 kj/mol
To determine:
Enthalpy change for the formation of C2H6O
Calculation:
The given reaction is:
[tex]C2H4(g) + H2O(g)\rightarrow C2H5OH(g)[/tex]
The enthalpy change for the reaction is given as;
[tex]\Delta H = \sum n(products)\Delta H^{0}f(products)-\sum n(reactants)\Delta H^{0}f(reactants)[/tex]
where n(products) and n(reactants) are the moles of products and reactants
Substituting the appropriate values for n and ΔH°f:
[tex]\Delta H = 1\Delta H^{0}f(C2H6O)-[1\Delta H^{0}f(C2H4)+1\Delta H^{0}f(H2O)][/tex]
ΔH = -277.69-(52.26-285.83) = -44.12 KJ
