The attractive force between two isolated ions is given by the formula:
-(1)
where,
is force of attraction,
is permittivity of vacuum =
,
and
are valence of two ions,
is the electron charge =
and
is the inter-atomic distance.
The inter-atomic distance,

where,
is the radius of cation and
is the radius of anion.
Since value of radius of cation is given so,
-(2)
The cation and anion are divalent so the value of
and
is 2 and -2 of cation and anion respectively.
Substituting the values in formula (1):



=

Substituting this value of
in equation 2:


Hence, the radius of anion is
.