Reprocessable and chemically recyclable poly(acylhydrazone–imine) covalent adaptable networks with enhanced mechanical strength and creep resistance

Literature Information

Publication Date 2023-12-11
DOI 10.1039/D3PY01054F
Impact Factor 5.582
Authors

Chunyang Bao, Jie Liu, Yanlong Yin, Zhirong Xin


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Abstract

Chemical recycling of thermosetting resins represents a sustainable solution to deal with end-of-life polymer products in an energy-saving and easy-to-conduct way. However, it remains a major challenge to fabricate easy-to-achieve chemically recyclable thermosets that possess superior mechanical strength, high fracture toughness, and desirable creep resistance. Herein, a new chemically recyclable poly(acylhydrazone–imine) covalent adaptable network (CAN) is reported by systematically tailoring the intramolecular dynamic interactions of polymer networks. The introduction of acylhydrazone bonds endowed PAIx-CANs with both high mechanical strength and fracture toughness through the formation of synergistic hydrogen-binding interactions. For example, PAI1-CANs exhibit a high Young's modulus of ∼1.58 GPa, a yield strength of ∼83.7 MPa, a tensile strength of ∼73.6 MPa, and also a high fracture toughness of ∼19.7 MJ m−3. Meanwhile, owing to the strong intermolecular hydrogen-binding interactions, the obtained PAIx-CANs also exhibit good creep resistance. Interestingly, the PAIx-CANs can be depolymerized into the starting monomers in high purity under acidic conditions at room temperature. The recovered monomers can be further utilized to fabricate new PAIx-CANs with comparable mechanical properties to the original PAIx-CANs. This work provides a new method for the construction of high-performance chemically recyclable thermosets as next-generation substitutes for conventional thermosetting resins.

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Polymer Chemistry
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