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Updated: Sep 12, 2026

Standard Test Method ASTM D 7998-19 for the Cohesive Strength Development of Wood Adhesives
Published on: May 17, 2020
A Supramolecular Adhesive with Hierarchical Energy Dissipation for Plywood Applications
Wei Tian1,2, Jiajia Deng1, Jing Zheng1
1Tribology Research Institute, School of Mechanical Engineering, Southwest Jiaotong University, Chengdu610031, China.
Abstract:
Polyurethane adhesives are highly promising materials for plywood bonding owing to their tunable molecular structures and flexible mechanical properties. However, conventional polyurethane adhesives often face a trade-off between cohesive strength and toughness while their limited damage tolerance remains a severe challenge for the long-term application of plywood under dynamic loading conditions. In this study, we innovatively designed a supramolecular elastomer adhesive with a gradient dynamic bonding network structure, denoted as PU-X. Through precise molecular engineering, a hierarchical bonding network was constructed, comprising a synergistic system of single, double, and triple hydrogen bonds as well as multidentate coordination bonds centered on Zn2+. This design enables the material to exhibit an intelligent sequential bond-breaking behavior under stress: weaker bonds preferentially dissociate to efficiently dissipate energy, whereas stronger bonds continuously maintain the integrity of the matrix, thereby achieving a synergistic enhancement of strength and toughness. After systematic optimization, PU-0.25 exhibited outstanding mechanical performance: its tensile strength increased by 69% to 89.8 MPa; its toughness nearly doubled to 413 MJ·m-3; and its load-bearing capacity exceeded 20,000 times its own weight. In plywood bonding tests, the dry and wet shear strengths of the PU-0.25 adhesive reached 2.7 MPa and 2.5 MPa, respectively, far exceeding the international standard requirement of 0.7 MPa. Moreover, it achieved a maximum fracture energy of 3.7 N·mm-1, demonstrating excellent bonding toughness and crack resistance. In addition, PU-X achieved a self-healing efficiency of 93% after healing at 60 °C for 24 h. This multiscale dynamic bonding strategy also provides an important design paradigm for the development of next-generation intelligent adhesive materials.
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