B2 - redox and periodicity Flashcards
Why does the first ionisation energy increase along a period
Atomic radius decreases
Nuclear charge increases
Nuclear attraction increases
Harder to remove the furthest electron
What is the 1st ionisation energy
Energy neeed to remove 1 mole of electrons from 1 mole of gaseous atoms
Why does first ionisation energy decrease down a group
Atom radius increases
Shielding increases
Nuclear attraction decreases
Easier to remove electrons
Why does ionisation energy decrease between Mg and Al
Al outer shell electron is in a P subshell rather then Mg in an S subshell. This means less energy is needed to remove it
Why does ionisation energy decrease between P and S
In sulfur one of the electron orbitals have paired electrons compared to phosphorus which doesn’t have any paired electrons. The paired electrons in sulfur repel which makes it easier to lose an electron
Why does melting point between Na and Mg increase
Nuclear charge increases
Number of delocalised electrons increase
Strength of metallic bonds increase
What is the order of increasing melting point between P,S,Cl,Ar
S8,P4,Cl2,Ar