`(Delta U - Delta H)` for the formation of `NH_(3)` from `N_(2)` and `H_(2)` is :

(Delta U - Delta H) for the formation of carbon monoxide (CO) from its elements of 298 K is (R = 8.314 JK^(-1) mol^(-1))

For the reaction : 2 NH_(3)(g) rarr N_(2)(g) + 3 H_(2)(g)

If Delta_(f)G^(@) for NH_(3)(g) is - 16.4 kJ mol^(-1) , then Delta G^(@) for the reaction : N_(2)(g) + 3 H_(2)(g) rarr 2NH_(3)(g) is

Calculate the Delta H at 298 K for the reaction (1)/(2)N_(2)(g) + (3)/(2)H_(2)(g) rarr NH_(3)(g) given that Delta H for the formation of NH_(3) has a valve of -46.0 kJ mol^(-1) (R = 8.314 JK^(-1) mol^(-1)) .

Calculate Delta H^(theta) for the reaction : H_(2)O (l) rarr H_(2)(g) + (1)/(2) O_(2) (g) Given 2H_(2)(g) + O_(2)(g) rarr 2H_(2)O(l) Delta H = -571.6 kJ

The enthalpy of formation of NH_(3) is -46 kJ//mol The enthalpy change for reaction : 2NH_(3)(g) rarr N_(2)(g) + 3H_(2)(g) is :

The heat of formation of Fe_(2)O_(3) is -824.2 kJ mol^(-1). Delta H for the reaction 2Fe_(2)O_(3)(s)rarr 4Fe(s)+3O_(2)(g) is :