Andrei Leushukou, M. S. Horetski, Aliaksei A. Vaitusionak, Hleb Baravoi, Pavel A. Nikishau, W. H. Liu, Irina V. Vasilenko, Maksim I. Hulnik, Sergei V. Kostjuk
Here, we report a new strategy for cationic RAFT polymerization of less reactive monomers, such as p -methylstyrene and styrene. This strategy implies that the addition of electron-withdrawing substituents to the stabilizing group of cumyl dithiobenzoate results in a decrease in the stability of cationic intermediates, thus facilitating their fragmentation and cationic RAFT polymerization. Particularly, it was demonstrated that both cumyl dithiobenzoate and cumyl dithiobenzoate, with a trifluoromethyl substituent in the Z group, activated by a small amount of SnCl 4, induced living cationic RAFT polymerization of p -methoxystyrene, affording polymers with molecular weights of up to 80,000 and 30,000 g mol –1, respectively. In contrast to the unsubstituted counterpart, cumyl dithiobenzoate with a trifluoromethyl substituent in the Z group was also an efficient chain-transfer agent for conducting the living cationic RAFT polymerization of p -methylstyrene, giving polymers with M n up to 10,000 g mol –1 and moderate dispersity (Đ = 1.3–1.8), while polymerization was terminated at incomplete conversion when cumyl dithiobenzoate was used. Cumyl dithiobenzoate with a trifluoromethyl substituent in conjunction with SnCl 4 also induced cationic RAFT polymerization of styrene, affording well-defined polystyrenes with M n up to 5000 g mol –1 . Finally, block copolymers of p -methylstyrene with styrene and methyl methacrylate were successfully synthesized via a mechanistic transformation from cationic to radical RAFT polymerization.