Question

What is the change in enthalpy for this gas-phase reaction between potassium and bromine?

The ionization energy for potassium is 419 kJ/mol. The electron affinity for bromine is -325 kJ/mol. Use these values and Hess's law to calculate the change in enthalpy for the following reaction per mole of reagent:
K(g)+Br(g)→K+(g)+Br−(g), ΔH=?

Answer 1

You should write out the reaction definitions of electron affinity and ionization energy:

`"X"(g) + e^(-) -> "X"^(-)(g)`,
Electron affinity, electron added in

`"M"(g) -> "M"^(+)(g) + e^(-)`,
Ionization energy, electron removed

Hence, one can deconstruct this into two half-reactions.

`"K"(g) -> "K"^(+)(g) + cancel(e^(-))`, `" "DeltaH_(IE) = "419 kJ/mol"`
`ul("Br"(g) + cancel(e^(-)) -> "Br"^(-)(g))`, `" "DeltaH_(EA) = -"325 kJ/mol"`
`"K"(g) + "Br"(g) -> "K"^(+)(g) + "Br"^(-)(g)`

And the sum is the net change in enthalpy, as per Hess's law...

`color(blue)(DeltaH_(rxn)) = DeltaH_1 + DeltaH_2 + . . .`

`= 419 - 325` `"kJ/mol"`

`=` `color(blue)("94 kJ/mol")`

Is this endothermic or exothermic?