What are the total enthalpy changes for each of the following oxidation or reduction processes?
#"Cl"^(-)(g) -> "Cl"^(+)(g) + 2e^(-)#
#2e^(-) + "K"^(+)(g) -> "K"^(-)(g)#
1 Answer
#DeltaH_("tot","Cl"^(-)->"Cl"^(+)) = DeltaH_(IE,"Cl"(g)) - DeltaH_(EA,"Cl"(g)) = "1599.8 kJ/mol"#
#DeltaH_("tot","K"^(+)->"K"^(-)) = DeltaH_(EA,"K"(g)) - DeltaH_(IE,"K"(g)) = -"467.2 kJ/mol"#
Since you are in the gas phase, we are talking about ionization energies and electron affinities. Recall:
IONIZATION ENERGY
It is the energy input in order to remove an electron.
Ionization is therefore described by:
#A(g) -> A^(+)(g) + e^(-)# ,#" "DeltaH_(IE) = . . . # or similar.
Since enthalpy is a state function,
ELECTRON AFFINITY
It is the energy change due to adding an electron. If it's negative, we can imagine that the atom gets more stable. If it's positive, the atom got less stable (hence, the noble gases have nonnegative electron affinities).
Electron affinity is therefore described by:
#A(g) + e^(-) -> A^(-)(g)# ,#" "DeltaH_(EA) = . . . # or similar.
Now, for the following processes...
CHLORINE PROCESS
We break this into two steps. (We know the values for starting at the neutral atom, but not the ions.)
#"Cl"^(-)(g) -> "Cl"(g) + e^(-)# #" "bb((1))# ,#" "-DeltaH_(EA,"Cl"(g)) = . . . #
#"Cl"(g) -> "Cl"^(+)(g) + e^(-)# #" "bb((2))# ,#" "DeltaH_(IE,"Cl"(g)) = . . . #
But as noted above, we recognize
Hence, by Hess's law, we add
#DeltaH_"tot" = DeltaH_(IE) - DeltaH_(EA)#
We look these up to be:
#DeltaH_(IE,"Cl"(g)) = "1251.2 kJ/mol"# , ref
#DeltaH_(EA,"Cl"(g)) = -"348.6 kJ/mol"# , ref
So,
#color(blue)(DeltaH_("tot","Cl"^(-)->"Cl"^(+))) = 1251.2 - (-348.6) = color(blue)("1599.8 kJ/mol")#
POTASSIUM PROCESS
Similar process as before, breaking into two steps. (We know the values for starting at the neutral atom, but not the ions.)
#"K"^(+)(g) + e^(-) -> "K"(g)# #" "bb((1))# ,#" "-DeltaH_(IE,"K"(g)) = . . . #
#"K"(g) + e^(-) -> "K"^(-)(g)# #" "bb((2))# ,#" "DeltaH_(EA,"K"(g)) = . . . #
We look these up to be:
#DeltaH_(IE,"K"(g)) = "418.8 kJ/mol"# , ref
#DeltaH_(EA,"K"(g)) = -"48.4 kJ/mol"# , ref
So, by Hess's law again:
#color(blue)(DeltaH_("tot","K"^(+)->"K"^(-))) = DeltaH_(EA,"K"(g)) - DeltaH_(IE,"K"(g))#
#= -48.4 - (418.8) = color(blue)(-"467.2 kJ/mol")#
If you notice, these processes were opposite in direction.
#DeltaH_(IE) - DeltaH_(EA) = -(DeltaH_(EA) - DeltaH_(IE))#
The left-hand side was the chlorine process, and the right-hand side (without the negative sign) was the potassium process. So, it makes some sense that they are opposite signs.
