The stande enthalpy of formation for NH(...

The stande enthalpy of formation for `NH_(3)(g)`is `-46.1KJxxmol^(-1)` .Calculate `DeltaH^(@)` for the reaction :
`2NH_(3)(g)toN_(2)(g)+3H_(2)(g)`

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The heat of formation of NH_(3)(g) is -46 " kJ mol"^(-1) . The DeltaH (in " kJ mol"^(-1) ) of the reaction, 2NH_(3)(g)rarrN_(2)(g)+3H_(2)(g) is

The heat of formation of NH_(3)(g) is -46 " kJ mol"^(-1) . The DeltaH (in " kJ mol"^(-1) ) of the reaction, 2NH_(3)(g)rarrN_(2)(g)+3H_(2)(g) is

The heat of formation of NH_(3)(g) is -46 " kJ mol"^(-1) . The DeltaH (in " kJ mol"^(-1) ) of the reaction, 2NH_(3)(g)rarrN_(2)(g)+3H_(2)(g) is

The enthalpy of formation of ammonia is -46.0 KJ mol^(-1) . The enthalpy change for the reaction 2NH_(3)(g)rarr N_(2)(g)+3H_(2)(g) is :

The enthalpy of formation of ammonia is -46.0 KJ mol^(-1) . The enthalpy change for the reaction 2NH_(3)(g)rarr N_(2)(g)+3H_(2)(g) is :

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

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