TY - JOUR
T1 - 4D printing of reprocessable thiocyanate covalent adaptable networks with reconfigurable shape memory ability
AU - Xu, Ting
AU - Chen, Kexiang
AU - He, Zhiyuan
AU - Zhang, Chuanzhen
AU - Li, Xiaoyu
AU - Zhang, Ziyan
AU - Fan, Wenbo
AU - Ge, Zhishen
AU - Cui, Chenhui
AU - Zhang, Yanfeng
N1 - Publisher Copyright:
© 2025
PY - 2026/2
Y1 - 2026/2
N2 - Shape memory polymers used in 4D printing only had one permanent shape after molding, which limited their applications in requiring multiple reconstructions and multifunctional shapes. Furthermore, the inherent stability of the triazine ring structure within cyanate ester (CE) crosslinked networks after molding posed significant challenges for both recycling, repairing, and degradation of resin. To address these obstacles, dynamic thiocyanate ester (TCE) bonds and photocurable group were incorporated into CE, obtaining the recyclable and 3D printable CE covalent adaptable networks (CANs), denoted as PTCE1.5. This material exhibits a Young's modulus of 810 MPa and a tensile strength of 50.8 MPa. Notably, damaged printed PTCE1.5 objects can be readily repaired through reprinting and interface rejoining by thermal treatment. Leveraging the solid-state plasticity, PTCE1.5 also demonstrated attractive shape memory ability and permanent shape reconfigurability, enabling its reconfigurable 4D printing. The printed PTCE1.5 hinges and a main body were assembled into a deployable and retractable satellite model, validating its potential application as a controllable component in the aerospace field. Moreover, printed PTCE1.5 can be fully degraded into thiol-modified intermediate products. Overall, this material not only enriches the application range of CE resin, but also provides a reliable approach to addressing environmental issue.
AB - Shape memory polymers used in 4D printing only had one permanent shape after molding, which limited their applications in requiring multiple reconstructions and multifunctional shapes. Furthermore, the inherent stability of the triazine ring structure within cyanate ester (CE) crosslinked networks after molding posed significant challenges for both recycling, repairing, and degradation of resin. To address these obstacles, dynamic thiocyanate ester (TCE) bonds and photocurable group were incorporated into CE, obtaining the recyclable and 3D printable CE covalent adaptable networks (CANs), denoted as PTCE1.5. This material exhibits a Young's modulus of 810 MPa and a tensile strength of 50.8 MPa. Notably, damaged printed PTCE1.5 objects can be readily repaired through reprinting and interface rejoining by thermal treatment. Leveraging the solid-state plasticity, PTCE1.5 also demonstrated attractive shape memory ability and permanent shape reconfigurability, enabling its reconfigurable 4D printing. The printed PTCE1.5 hinges and a main body were assembled into a deployable and retractable satellite model, validating its potential application as a controllable component in the aerospace field. Moreover, printed PTCE1.5 can be fully degraded into thiol-modified intermediate products. Overall, this material not only enriches the application range of CE resin, but also provides a reliable approach to addressing environmental issue.
KW - 4D Printing
KW - Covalent adaptable networks
KW - Cyanate ester resin
KW - Dynamic thiocyanate ester bonds
KW - Shape memory
UR - https://www.scopus.com/pages/publications/105022266687
U2 - 10.1016/j.cclet.2025.111959
DO - 10.1016/j.cclet.2025.111959
M3 - 文章
AN - SCOPUS:105022266687
SN - 1001-8417
VL - 37
JO - Chinese Chemical Letters
JF - Chinese Chemical Letters
IS - 2
M1 - 111959
ER -