What is the enthalpy change (in kJ/mol) for the following process?

Na+(g) + Br-(g) --> NaBr (s)

Hint: use the Born-Haber cycle
Note: the reference state for Br2 is Br2(l) not Br2(g)

Data (in kJ/mol):
enthalpy of sublimation of Na(s): 107
standard enthalpy of formation of Br2(g): 32
bond dissociation energy of Br2(g): 194
ionization energies (1, 2, 3) of Na(g): 496
ionization energies Br(g): 140, 103, 473
first electron affinity of Br(g): -326
standard enthalpy of formation of NaBr(s): -351

Sooo..
deltaH1=+107
deltaH2=194/2=+97
deltaH3=+32
deltaH4=+496
deltaH5=-326
deltaH6=lattice energy=?

deltaHf= -351

Sooo..
-351=107+97+32+496-326+lattice energy
lattice energy= -757

This is not the correct answer.
Can someone please tell me where I've gone wrong please!

1 answer