Respuesta :
Answer: The enthalpy of the formation of [tex]AgNO_2(s)[/tex] is coming out to be -44.35 kJ/mol.
Explanation:
Enthalpy change is defined as the difference in enthalpies of all the product and the reactants each multiplied with their respective number of moles. It is represented as [tex]\Delta H^o[/tex]
The equation used to calculate enthalpy change is of a reaction is:
[tex]\Delta H^o_{rxn}=\sum [n\times \Delta H^o_f(product)]-\sum [n\times \Delta H^o_f(reactant)][/tex]
For the given chemical reaction:
[tex]AgNO_3(s)\rightarrow AgNO_2(s)+\frac{1}{2}O_2(g)[/tex]
The equation for the enthalpy change of the above reaction is:
[tex]\Delta H^o_{rxn}=[(1\times \Delta H^o_f_{(AgNO_2)})+(\frac{1}{2}\times \Delta H^o_f_{(O_2)})]-[(1\times \Delta H^o_f_{(AgNO_3)})][/tex]
We are given:
[tex]\Delta H^o_f_{(AgNO_3)}=-123.02kJ/mol\\\Delta H^o_f_{(O_2)}=0kJ/mol\\\Delta H^o_{rxn}=78.67kJ[/tex]
Putting values in above equation, we get:
[tex]78.67=[(1\times \Delta H^o_f_{(AgNO_2)})+(\frac{1}{2}\times 0)]-[1\times (-123.0))]\\\\\Delta H^o_f_{(AgNO_2)}=-44.35kJ/mol[/tex]
Hence, the enthalpy of the formation of [tex]AgNO_2(s)[/tex] is coming out to be -44.35 kJ/mol.
