If `Delta H_("vap")` of pure water at `100^(@)C` is `40.627 kJ mol^(-1)`. The value of `Delta S_("vap")` is

The enthalpy of vaporisation of water at 100^(@)C is 40.63 KJ mol^(-1) . The value Delta E for the process would be :-

DeltaH (vap) for water is 40.7 kJ mol^(-1) . The entropy of vapourisation of water is

Standard enthalpy of vaporisation DeltaV_(vap).H^(Theta) for water at 100^(@)C is 40.66kJmol^(-1) .Teh internal energy of Vaporization of water at 100^(@)C("in kJ mol"^(-1)) is

Enthalpy of formation of NH_(3) is -X kJ and Delta H_(H-H) , Delta H_(N-H) are respectively Y kJ mol^(-1) and Z kj mol^(-1) . The value of Delta H_(N = N) is

Delta_(vap)H^(@) for water is 40.73 kJ mol^(-1) and Delta_(vap)S^(@) is 109 J K^(-1) "mol"^(-1) . Calculate the temperature at which liquid water wil be in the equilibrium with water vapour.

What is Delta U when 2.0 mole of liquid water vaporises at 100^(@)C ? The heat of vaporisation (Delta H_("vap".)) of water at 100^(@)C is 40.66 KJmol^(-1) .