In the following halogenation reaction:
At which position will halogenation take place?
It is obvious that the halogenation will take place at a 3° Carbon atom (the rates of halogenation for 3°,2°,1° atoms follow the ratio 1600:82:1 or thereabouts). The question is which 3° atom? I labeled the atoms as shown:
I believe that halogenation will take place at A because the cyclopropyl ring can stabilize the free radical formed at A better than the 6-membered ring. A similar question that deals with carbocations is here, which shows the stability of the cyclopropylmethyl carbocation. Can a similar logic also be applied to free radicals? Please confirm.
