Strong and Tough Epoxy Thermosets With Hyperbranched Epoxy Resin via Constructing Sacrificial Multiple Network

ABSTRACT To address the issues of low fracture toughness and poor impact resistance of epoxy thermosets, this study synthesized a vanillin‐based hyperbranched epoxy resin (VHER) via constructing a sacrificial multiple network. The sacrificial multiple network promotes the stress distribution and effective energy dissipation through bond breaking and recombination, thereby simultaneously enhancing the strength and toughness of epoxy thermosets. The hyperbranched topology regulates crosslinking density, increases free volume, and induces microphase separation. As a result, the epoxy thermosets containing 9% VHER exhibit outstanding overall performance with a tensile strength of 126.26 MPa and toughness of 10.41 MJ·m −3 . This work provides new design strategies and theoretical insights for the development of epoxy thermosets with superior mechanical properties.

Authors

Publication Details

Journal
Polymer Engineering and Science
Published
2026-09-28
DOI
https://doi.org/10.1002/pen.70903
Primary Topic
Epoxy Resin Curing Processes
Type
article
Field-Weighted Citation Impact
0.00
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article

Strong and Tough Epoxy Thermosets With Hyperbranched Epoxy Resin via Constructing Sacrificial Multiple Network

Daohong Zhang, Junheng Zhang, Jiliang Zhou, Pengcheng Yang
Polymer Engineering and Science
Epoxy Resin Curing Processes
article

Strong and Tough Epoxy Thermosets With Hyperbranched Epoxy Resin via Constructing Sacrificial Multiple Network

Daohong Zhang, Junheng Zhang, Jiliang Zhou, Pengcheng Yang
article en

Abstract

ABSTRACT To address the issues of low fracture toughness and poor impact resistance of epoxy thermosets, this study synthesized a vanillin‐based hyperbranched epoxy resin (VHER) via constructing a sacrificial multiple network. The sacrificial multiple network promotes the stress distribution and effective energy dissipation through bond breaking and recombination, thereby simultaneously enhancing the strength and toughness of epoxy thermosets. The hyperbranched topology regulates crosslinking density, increases free volume, and induces microphase separation. As a result, the epoxy thermosets containing 9% VHER exhibit outstanding overall performance with a tensile strength of 126.26 MPa and toughness of 10.41 MJ·m −3 . This work provides new design strategies and theoretical insights for the development of epoxy thermosets with superior mechanical properties.

Polymer Engineering and Science
Affordable and clean energy
Openalex Percentile: Top 21%
Epoxy Resin Curing Processes
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