[sabah]

When sodium Chloride is strongly heated in a flame, the flame takes on the yellow color associated with the emission spectrum of sodium atoms. the reaction that occurs in the gaseous state is

Na(g) + Cl- (g) -----> Na (g) + Cl (g)

Calculate delta H for this reaction.


i really need help with the question. even though my teacher solved it a little i still do not understand it.

This is how she did the question.

Na + e ----> Na  delta H = - Ii
Cl- --------> Cl + e  delta H = - EA
----------------------------------------
delta H =  delta H1 + Delta H 2


pleaseeeee can anyone explain it to me...

[champ]

here is the solution for this question....

   Na + e ----> Na  delta H = - Ii
Cl- --------> Cl + e  delta H = - EA
----------------------------------------
delta H =  delta H1 + Delta H 2
Ii is stand for Ionization energy (losing of electron)

EA is stnad for Electron Affinity..(gaining of electron)

U just have to look for the First Ionization Energy of Sodium and first Electron Affinity for Cl.Then cancle out the electrons. U should have the following equation..
Na(g) + Cl- (g) -----> Na (g) + Cl (g)
After getting this equation then just simply use the Hess's law to calculate the Delta H...UNits are in Kj/mole...