

FOLLOWUS
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Center for Advanced Low-Dimension Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China
shgyang@dhu.edu.cn
Received:01 March 2023,
Revised:2023-4-14,
Accepted:17 April 2023,
Online First:12 June 2023,
Published:01 December 2023
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Liu, Z. X.; Liu, D. Z.; Zhang, C. H.; Wang, W. J.; Huang, H.; Yang, S. G. Stabilize and reinforce hydrogen-bonded polymer complex elastic fiber by catechol chemistry and coordination. Chinese J. Polym. Sci. 2023, 41, 1846–1855
Ze-Xin Liu, De-Zhong Liu, Cai-Hong Zhang, et al. Stabilize and Reinforce Hydrogen-Bonded Polymer Complex Elastic Fiber by Catechol Chemistry and Coordination[J]. Chinese Journal of Polymer Science, 2023, 41(12): 1846-1855.
Liu, Z. X.; Liu, D. Z.; Zhang, C. H.; Wang, W. J.; Huang, H.; Yang, S. G. Stabilize and reinforce hydrogen-bonded polymer complex elastic fiber by catechol chemistry and coordination. Chinese J. Polym. Sci. 2023, 41, 1846–1855 DOI: 10.1007/s10118-023-2992-5.
Ze-Xin Liu, De-Zhong Liu, Cai-Hong Zhang, et al. Stabilize and Reinforce Hydrogen-Bonded Polymer Complex Elastic Fiber by Catechol Chemistry and Coordination[J]. Chinese Journal of Polymer Science, 2023, 41(12): 1846-1855. DOI: 10.1007/s10118-023-2992-5.
PEO/PAA-Dopa/Metal fibers were constructed by the synergy interactions of hydrogen bonds
coordinate bonds and covalent bonds. Compared with hydrogen-bonded PEO/PAA fibers
PEO/PAA-Dopa/Metal fibers show high stiffness
strength and toughness
and quick recovery.
Hydrogen-bonded polymer complex fiber of poly(ethylene oxide) (PEO) and poly(acrylic acid) (PAA) shows rubber elasticity in ambient environment
but the fiber has relatively low strength and weak stability. We apply the catechol chemistry and metal coordination to stabilize and strengthen the PEO/PAA fiber. PAA is grafted with dopamine (Dopa)
and then combines with PEO to prepare fiber. PAA-Dopa in the fiber is cross-linked through oxidation induced dismutation and the metal ions are introduced through coordination. The cross-linking and coordination greatly improve the stability of the fiber against the erosion of alkaline water. Among four different metal coordination fibers
PEO/PAA-Dopa/Cu fiber keeps the excellent extensibility (~1000%) and presents much higher initial modulus (~7 MPa)
ultimate strength (~20 MPa)
and toughness (~60 MJ/m
3
) than its precursor PEO/PAA fiber. In addition
PEO/PAA-Dopa/Cu fiber shows quick recovery and large energy dissipation ratio compared with the PEO/PAA fiber. The distinct mechanical properties enhancement of the hydrogen-bonded complex fiber is attributed to the synergy of hydrogen bonds
coordination and covalent bond cross-linking.
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