Ferric oxide crystalliizes in a hexagonal close-packed array of oxide ions with two out of every three octahedral holes occupied by ferric ions. Derive the formula of the ferric oxide.

Suppose the number of oxide ions `(O^(2-))` in the packing =90
`therefore` Number of octahedral voids =90
AS `2//3^(rd)` of the octahedral voids are occupied by ferric ions, therefore, number of ferric ions 2 present=`{2}{3}xx100=60`
`therefore` Ratio of `Fe^(3+):O^(2)=60:90=2:3`
Hence, the formula of ferric oxide is `Fe_(2)O_(3)`.