TY - JOUR
T1 - Synthesis of Propargyl-Terminated Polybutadiene Acrylonitrile and Properties of the Resulting Polytriazole Elastomers
AU - Yin, Shu
AU - Yan, Chenyang
AU - Wang, Lin
AU - He, Jiyu
AU - Li, Xiangmei
AU - Yang, Rongjie
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026/3
Y1 - 2026/3
N2 - In composite solid propellants, liners are critical for ensuring structural integrity and reliability, yet traditional polyurethane systems face limitations, including moisture sensitivity and plasticizer migration. To address these challenges, a novel propargyl-terminated polybutadiene acrylonitrile (PTBN) binder is synthesized and cured via click chemistry. The curing kinetics, mechanical properties, and migration resistance of the resulting polytriazole elastomers are systematically investigated. Optimal mechanical performance is achieved at an azide-to-alkyne molar ratio of R = 1.0, yielding a maximum tensile strength of 2.83 MPa. The introduced cyano groups significantly enhance compatibility with azide curatives and reduce plasticizer migration compared to conventional systems. Furthermore, incorporation of 3 wt% montmorillonite creates nanoscale barrier effects that synergistically improve migration resistance while maintaining mechanical integrity. This PTBN-based polytriazole system represents a significant advancement in liner technology, offering superior curing controllability and migration resistance for next-generation solid rocket motor applications.
AB - In composite solid propellants, liners are critical for ensuring structural integrity and reliability, yet traditional polyurethane systems face limitations, including moisture sensitivity and plasticizer migration. To address these challenges, a novel propargyl-terminated polybutadiene acrylonitrile (PTBN) binder is synthesized and cured via click chemistry. The curing kinetics, mechanical properties, and migration resistance of the resulting polytriazole elastomers are systematically investigated. Optimal mechanical performance is achieved at an azide-to-alkyne molar ratio of R = 1.0, yielding a maximum tensile strength of 2.83 MPa. The introduced cyano groups significantly enhance compatibility with azide curatives and reduce plasticizer migration compared to conventional systems. Furthermore, incorporation of 3 wt% montmorillonite creates nanoscale barrier effects that synergistically improve migration resistance while maintaining mechanical integrity. This PTBN-based polytriazole system represents a significant advancement in liner technology, offering superior curing controllability and migration resistance for next-generation solid rocket motor applications.
KW - click chemistry
KW - composite solid propellants
KW - plasticizer migration resistance
KW - polytriazole elastomer
KW - propargyl-terminated polybutadiene acrylonitrile
UR - https://www.scopus.com/pages/publications/105027253330
U2 - 10.1002/prep.70116
DO - 10.1002/prep.70116
M3 - Article
AN - SCOPUS:105027253330
SN - 0721-3115
VL - 51
SP - 380
EP - 391
JO - Propellants, Explosives, Pyrotechnics
JF - Propellants, Explosives, Pyrotechnics
IS - 3
ER -