RAFT Polymerization with Triphenylstannylcarbodithioates (Sn-RAFT)
Ihor Kulai, Oleksii Brusylovets, Zoia Voïtenko, Simon Harrisson, Stéphane Mazières, Mathias Destarac
Abstract
Ihor Kulai, Oleksii Brusylovets, Zoia Voïtenko, Simon Harrisson, Stéphane Mazières, Mathias Destarac
Abstract
A new range of tin-based reversible addition–fragmentation chain-transfer (RAFT) agents is described and evaluated for the polymerization of acrylamides, methyl acrylate and styrene. These organometallic compounds are highly reactive reversible transfer agents which allow an efficient control of the polymerization of substituted acrylamide monomers, whereas RAFT control for methyl acrylate and styrene polymerization is contaminated by side reactions at prolonged reaction times. 119 Sn NMR is shown to be an informative instrument for the monitoring of Sn-RAFT-mediated polymerizations.
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A new range of tin-based reversible addition–fragmentation chain-transfer (RAFT) agents is described and evaluated for the polymerization of acrylamides, methyl acrylate and styrene. These organometallic compounds are highly reactive reversible transfer agents which allow an efficient control of the polymerization of substituted acrylamide monomers, whereas RAFT control for methyl acrylate and styrene polymerization is contaminated by side reactions at prolonged reaction times. 119 Sn NMR is shown to be an informative instrument for the monitoring of Sn-RAFT-mediated polymerizations.
Key concepts: Chain transfer, Raft, Reversible addition−fragmentation chain-transfer polymerization, Polymerization, Polymer chemistry, Styrene, Living polymerization, Monomer