a2009 said:
So if I understand correctly, there's a big jump in energy between a full p shell and the next s shell.
Yes, I suppose that's the best I can come up with. Although the s shell is not necessarily always lower either. (Ar
- has its last electron in the p shell, but K, with the same number of electrons, has it in the s shell, which illustrates well how tricky this stuff can be)
But filling a shell of a higher n is obviously quite a bit higher in energy, which one can tell from the fact that it almost never happens. O
2- is everywhere, but F
2- simply doesn't exist, even though the latter should be at least as stable - if you ignore the quantum mechanics involved. There's really just Xenon hexafluoride and a handful of other such exotic and unstable compounds where this occurs.
An s subshell is significantly higher in energy than it's preceding p subshell. Therefore it might be possible to gain a lot of energy by shedding these electrons (being doubly ionized). In contrast dropping from a p shell would require six fold ionization.
Yes. Well remember here that for isolated atoms
in vacuum, the neutral species is
always lower in energy. The "stability" of noble gas configurations is not
in itself large enough to offset the energy required for ionization. So it's only once other atoms/molecules come into play that this effect becomes noticable. So for instance, when you put an alkali metal in water (a highly dielectric medium), you stabilize the charge and hence lower the ionization energy. Only then does it become energetically beneficial for an alkali metal to drop its outermost electron (or for a halogen to gain one) and go to the noble gas configuration.
One has to watch out here with thinking too much in pure electrostatic terms. Electrons don't behave at all either like classical point charges or like a semi-classical charge-distribution 'cloud'. The relative stabilities here are governed to a large extent by purely quantum-mechanical effects, like Pauli repulsion/exchange energy. A filled orbital is not only more stable due to spherical symmetry, but also due to the fact that it minimizes the exchange energy. But this is not the case for an s orbital, which has no exchange energy since it only contains one electron of each spin. So this is the reason why a filled shell is more stable, but a filled s-shell is not so much more stable. And so you have Al
3+ but not Al
+. (Easy theoretical rationalization: Take a peek at the Hartree-Fock equations and note the negative sign in front of the exchange operator)
You could make an argument also in terms of Pauling electronegativities and such, but I think that would be cheating, since those are based on ionization potentials/electron affinities to begin with.
