To draw the structure of $\ce{ClO2}$, I tried to find the hybridization of the central atom i.e $\ce{Cl}$. I figured out that there would be two $\ce{Cl - O}$ double bonds, which means $\ce{Cl}$ would have 4 bonding electrons. But this assigns 3 electrons as nonbonding residing on the $\ce{Cl}$ atom. So, $\ce{ClO2}$ is an odd electron species.
Then, how do I find its hybridization and draw its structure?
Can I not just count the number of σ bonds and the number of lone pairs as usual, i.e, considering the 3 non bonding electrons as 1 lone pair, and find the number of hybrid orbitals and thus, find its hybridization? This gives the answer of $\ce{ClO2}$ being $\ce{sp^2}$ hybridized and it's geometry being trigonal planar. Is this the correct answer? Am I right in my determination of bonding and nonbonding electrons of the atom or is there something special in this compound $\ce{ClO2}$?
