Ultrastrong and High‐Tough Thermoset Epoxy Resins from Hyperbranched Topological Structure and Subnanoscaled Free Volume

Author:

Liu Xin1,Wu Huanghu1,Xu Wei2,Jiang Yu1,Zhang Junheng1,Ye Bangjiao2,Zhang Hongjun2,Chen Sufang3,Miao Menghe4,Zhang Daohong1ORCID

Affiliation:

1. Key Laboratory of Catalysis and Energy Materials Chemistry of Ministry of Education & Hubei Key Laboratory of Catalysis and Materials Science Hubei R&D Center of Hyperbranched Polymers Synthesis and Applications South‐Central Minzu University Wuhan 430074 China

2. State Key Laboratory of Particle Detection and Electronics University of Science and Technology of China Hefei 230026 China

3. Key Laboratory for Green Chemical Process of Ministry of Education Hubei Key Laboratory of Novel Reactor and Green Chemical Technology School of Chemical Engineering and Pharmacy Wuhan Institute of Technology Wuhan 430205 China

4. Department of Mechanical Engineering The University of Melbourne Grattan Street Parkville VIC 3010 Australia

Abstract

AbstractThe strength and toughness of thermoset epoxy resins are generally mutually exclusive, as are the high performance and rapid recyclability. Experimentally determined mechanical strength values are usually much lower than their theoretical values. The preparation of thermoset epoxy resins with high modulus, high toughness, ultrastrong strength, and highly efficient recyclability is still a challenge. Here, novel hyperbranched epoxy resins (Bn, n = 6, 12, 24) with imide structures by a thiol‐ene click reaction. Bn shows an excellent comprehensive function in simultaneously improving the strength, modulus, toughness, low‐temperature resistance, and degradability of diglycidyl ether of bisphenol‐A (DGEBA). All the mechanical properties first increase and then decrease with minimization of the free volume properties. The improvement is attributable to uniform molecular holes or free volume by a molecular mixture of linear and hyperbranched topological structures. The precise measurement and controllability of the molecular free volume properties of epoxy resins is first discovered, as well as the imide structure degradation of crosslinked epoxy resins. The two conflicts are successfully resolved between strength and toughness and between high performance during service and high efficiency during degradation. These findings provide a route for designing ultrastrong, tough, and recyclable thermoset epoxy resins.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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