TY - JOUR
T1 - Ring-expansion/contraction radical crossover reactions of cyclic alkoxyamines
T2 - A mechanism for ring expansion-controlled radical polymerization
AU - Narumi, Atsushi
AU - Kobayashi, Tetsuya
AU - Yamada, Masatsugu
AU - Binder, Wolfgang H.
AU - Matsuda, Keigo
AU - Shaykoon, Montaser Shaykoon Ahmed
AU - Enomoto, Kazushi
AU - Kikuchi, Moriya
AU - Kawaguchi, Seigou
N1 - Funding Information:
Acknowledgments: This study was partly supported by JSPS KAKENHI Grant Number 16K05786.
Publisher Copyright:
© 2018 by the authors.
PY - 2018/6/8
Y1 - 2018/6/8
N2 - Macrocyclic polymers present an important class of macromolecules, displaying the reduced radius of gyration or impossibility to entangle. A rare approach for their synthesis is the ring expansion-controlled radical "vinyl" polymerization, starting from a cyclic alkoxyamine. We here describe ring-expansion radical crossover reactions of cyclic alkoxyamines which run in parallel to chain-propagation reactions in the polymerization system. The radical crossover reactions extensively occurred at 105-125 °C, eventually producing high molecular weight polymers with multiple inherent dynamic covalent bonds (NOC bonds). A subsequent ring-contraction radical crossover reaction and the second ring-expansion radical crossover reaction are also described. The major products for the respective three stages were shown to possess cyclic morphologies by the molecular weight profiles and the residual ratios for the NOC bonds (ϕ in %). In particular, the high ϕ values ranging from ca. 80% to 98% were achieved for this cyclic alkoxyamine system. This result verifies the high availability of this system as a tool demonstrating the ring-expansion "vinyl" polymerization that allows them to produce macrocyclic polymers via a one-step vinyl polymerization.
AB - Macrocyclic polymers present an important class of macromolecules, displaying the reduced radius of gyration or impossibility to entangle. A rare approach for their synthesis is the ring expansion-controlled radical "vinyl" polymerization, starting from a cyclic alkoxyamine. We here describe ring-expansion radical crossover reactions of cyclic alkoxyamines which run in parallel to chain-propagation reactions in the polymerization system. The radical crossover reactions extensively occurred at 105-125 °C, eventually producing high molecular weight polymers with multiple inherent dynamic covalent bonds (NOC bonds). A subsequent ring-contraction radical crossover reaction and the second ring-expansion radical crossover reaction are also described. The major products for the respective three stages were shown to possess cyclic morphologies by the molecular weight profiles and the residual ratios for the NOC bonds (ϕ in %). In particular, the high ϕ values ranging from ca. 80% to 98% were achieved for this cyclic alkoxyamine system. This result verifies the high availability of this system as a tool demonstrating the ring-expansion "vinyl" polymerization that allows them to produce macrocyclic polymers via a one-step vinyl polymerization.
KW - Cyclic alkoxyamine
KW - Cyclic topology
KW - Living radical polymerization
KW - Macrocyclic polymer
KW - Nitroxide-mediated controlled radical polymerization (NMP)
KW - Radical crossover reaction
KW - Ring-contraction reaction
KW - Ring-expansion reaction
KW - Ring-expansion vinyl polymerization
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U2 - 10.3390/polym10060638
DO - 10.3390/polym10060638
M3 - Article
AN - SCOPUS:85048448134
SN - 2073-4360
VL - 10
JO - Polymers
JF - Polymers
IS - 6
M1 - 638
ER -