What is enthalpy of hydrogenation?
1 Answer
It's just the heat/enthalpy of reaction for a hydrogenation reaction.
One example is:
#"H"_2"C"="CH"_2 + stackrel("H"_2)(->) " H"_3"C"-"CH"_3#
#color(white)(aaaaaaaaaaaaa)^"Pd/C"#
#color(blue)(DeltaH_"rxn"^@ ~~ -"136 kJ/mol")#
You can determine this from the standard enthalpies of formation.
#\mathbf(DeltaH_"rxn"^@ = sum_P n_PDeltaH_f^@ - sum_R n_RDeltaH_f^@)# where
#R# is reactants,#P# is products,#n# is the stoichiometric coefficient,#H# is enthalpy, and#@# labels the enthalpy as the "standard" enthalpy (#T = 25^@"C"# and#P = "1 atm"# ). You should be able to just look#DeltaH_f^@# up in your textbook appendix.
#DeltaH_(f, "H"_2"C"="CH"_2(g))^@ = "52.3 kJ/mol"#
#DeltaH_(f, "H"_2(g))^@ = "0 kJ/mol"#
#DeltaH_(f, "H"_3"C"-"CH"_3(g))^@ = "-83.85 kJ/mol"#
Note that the catalyst in the reaction example does not numerically contribute to the enthalpy of hydrogenation.
So, evaluating this is pretty simple:
#color(blue)(DeltaH_"rxn"^@) = (n_("H"_3"C"-"CH"_3(g))DeltaH_(f, "H"_3"C"-"CH"_3(g))^@) - (n_("H"_2"C"="CH"_2(g))DeltaH_(f, "H"_2"C"="CH"_2(g))^@ + n_("H"_2(g))DeltaH_(f, "H"_2(g))^@)#
#= (1*"-83.85 kJ/mol") - (1*"52.3 kJ/mol" + 1*"0 kJ/mol")#
#= color(blue)(-"136.15 kJ/mol")#
