`DeltaS` for vapousization of 900 g water (in KJ//K) is `[DeltaH_(vap) = 40 KJ//mol]`

Cl_((g)) + e^(-) rarr Cl_((g))^(-) , E_A = -348 kJ//"mole" at 0 K. then DeltaH for same process at 300K (in kJ) [R=8J/mol/K] [Hint : DeltaH = EA - 5/2 RT ].

A swimmer coming out from a pool is covered with a film of water weighing about 18g. How much heat must be supplied to evaporate this water at 298 K? Calculate the internal energy of vaporisation at 100^@C . DeltaH_(vap)^@ for water at 373K = 40.66 kJ mol^(-1)

The standard molar engthalpy of vaporisation of benzene Delta_(vap)H^(@) at 353 K is 30.8 kJ mol^(-1) . If the benzene vapours behave as an ideal gas, the change in internal energy of vaporisation of 78 g of benzene at 353 K in kJ mol^(-1) is

For the reaction at 300 K A_((g)) harr V_((g)) + S_((g) . Delta_(t) H^(@) = - 30 "KJ/mol" Delta_(t)S^(@) = - 0.1 K.J. K^(-1)."mole"^(-1) What Is the value of equilibrium constant ?

DeltaH and DeltaS for certain reaction are -10KJ and - 44J/K, DeltaG^@ is

The normal boiling point of a liquid 'A' is 350K. DeltaH_("vap") at normal boiling point is 35 kJ/mole. Pick out the correct statement(s). (Assume DeltaH_("vap") to be independent of pressure)

What is the melting point of benzene if Delta H_("fusion") = 9.95 kJ//mol and Delta S_("fusion") = 35.7 J//K- mol ?