The reaction of cyanamide, `NH_(2)CN(s)`, with dioxygen was carried out in a bomb calorimeter, and `DeltaU` was found to be `-742.7 kJ mol^(-1)` at `298 K`. Calculate enthalpy change for the reaction at `298 K`. `NH_(2)CN(g)+3/2O_(2)(g) rarr N_(2)(g)+CO_(2)(g)+H_(2)O(l)`

The reaction of cyanamide, `NH_(2)CN(s)`, with dioxygen was carried ou

1.	The reaction of cyanamide, `NH_(2)CN(s)`, with dioxygen was carried out in a bomb calorimeter, and `DeltaU` was found to be `-742.7 kJ mol^(-1)` at `298 K`. Calculate enthalpy change for the reaction at `298 K`. `NH_(2)CN(g)+3/2O_(2)(g) rarr N_(2)(g)+CO_(2)(g)+H_(2)O(l)`
Answer» Correct Answer - `-743.939 kJ` Enthalyp change for a raction `(DeltaH)` is given by the expression, `DeltaH=DeltaU+Deltan_(g)RT` Where, `DeltaU`= change in internal energy `Deltan_(g)` = change in number of moles For the given reaction, `Deltan_(g)=sumn_(g) ("products")-sumn_(g)("reactants")` `=(2-2.5)` moles `Deltan_(g)=-0.5` moles And, `DeltaU=-742.7 kJ"mol"^(-1)` T=298 K `R=8.314xx10^(-3)kJ "mol"^(-1)` Substituting the values in the expression of `DeltaH :` `DeltaH=(-742.7 kJ "mol"^(-1))+(-0.5 "mol")(298 K) (8.314xx10^(-3)KJ "mol"^(1)K^(-1))` `=-742.7-1.2` `DeltaH=-743.9 kJ "mol"^(-1)`

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The reaction of cyanamide, `NH_(2)CN(s)`, with dioxygen was carried out in a bomb calorimeter, and `DeltaU` was found to be `-742.7 kJ mol^(-1)` at `298 K`. Calculate enthalpy change for the reaction at `298 K`. `NH_(2)CN(g)+3/2O_(2)(g) rarr N_(2)(g)+CO_(2)(g)+H_(2)O(l)`

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