rank these entities according to increasing ionization energy: Na+,Mg+,F-,Ne,Al3+
na < Mg < Al< F< Ne
How?
you look at period table the element will incease from left to right, and from bottom to top.
the atomic size will be bigger
I apologize, your answer is wrong, know the answer to be: Mg+,F-,Ne,Na+,Al3+ I know you have to ratify the effects of the charges but I do not know how to get there.
is that the answer? are you sure?
Yes positive
oh yeah you right, they have the charge. I remember that that the more positive charge is the bigger, then to the atomic dont have change, and the small one is negative change . F- is smaller than Ne because they have negavative change. But i dont forget why Mg+ is smaller than F-. maybe that is the special case. Iam sorry. I hope that will help you a little bit
no problem.
just like annaT has put it. we begin from the left to the right of a period=that is increasing ionisation energy
yes that is i thought too,
Mg+,F-,Ne,Na+,Al3+ cations and anions also are responsible as ionisation energy also depends on atomic size and size of cation is smaller than the atomic size so ionisation energy will b more while anion is larger in size than atomic size
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