Classification of Elements Part 1

Ionization enthalpy is the energy required to remove the electron from the outer most orbit.
Electronic configuration :
V(23)=[Ar]3d34S2

Cr(24)=[Ar]‌‌3d5‌‌4S1

Mn(25)=[Ar]3d54S2

Fe(26)=[Ar]‌‌3d6‌‌4S2
After first ionization enthalpy the electronic configuration will be,
V(23)=[Ar]3d34S1
Cr(24)=[

Ar

]3d5
Mn(25)=[

Ar

3d5

4S1

.
Fe(26)=[Ar]3d64S1
Now in 2 nd ionization enthalpy one more electron will be removed. And after second ionization enthalpy electronic configuration will be,
V(23)=[

Ar

3d3

.
Cr(24)=[Ar]3d4
Mn(25)=[

Ar

]3d5
Fe(26)=[Ar]3d6
For V(23),Mn(25) and Fe(26) electron is removed from 4S orbital but for Cr(24) electron is removed from 3d orbital.
We know distance of 4S>3d from the nucleus. So, the attraction on the electrons of 45 shell is less compared to 3d shell by the nucleus. So, the removed of electron will be easier for the electrons of 4S shell than 3d shell.
So, for Cr(24) second ionization is more than other as electron is removed from 3d shell.
And for Cr(24) outer most shell " 3d′′ was half filled after 1 st ionization enthalpy, so 3d shell was stable. So removal of electron will be difficult from stable shell. That is why also 2nd ionization enthalpy of Cr(24) is higher compare to other given atoms.