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为整体强化而进行的策略性弱化:在可持续橡胶“弱”非共价网络中由过度拉伸驱动的同步强化增韧

Strategic weakening for holistic strengthening: overstrain-driven synchronous strengthening-toughening in sustainable rubber "weak" non-covalent networks.

作者信息

Zhou Wei-Chen, Gao Xue-Qin, Li Jia-Hao, Wang Yan, Wang Yu-Zhong, Deng Cong

机构信息

State Key Laboratory of Advanced Polymer Materials, Sichuan University, Chengdu, 610065, People's Republic of China.

Collaborative Innovation Center for Eco-Friendly and Fire-Safety Polymeric Materials (MoE), National Engineering Laboratory for Eco-Friendly Polymer Materials (Sichuan), Sichuan University, Chengdu, 610064, People's Republic of China.

出版信息

Mater Horiz. 2025 Aug 26;12(17):6741-6750. doi: 10.1039/d5mh00711a.

Abstract

The pursuit of sustainable rubbers with exceptional mechanical robustness is hindered by intrinsic paradoxes: dynamic covalent networks enable recyclability but compromise mechanical performance, and high-cohesive-energy non-covalent networks are constrained by a fundamental trade-off between strength and ductility. Herein, we introduce a strain amplification paradigm dominated by the purposeful design of non-covalent networks-an approach that strategically engineers stress-bearing pathways through the synergy of reduced cohesive energy and hierarchical interactions. By modulating the cohesive energy of hydrogen-bonding networks in epoxidized natural rubber (ENR), we activate an overstrain-driven stress redistribution mechanism, seamlessly coupling with strain-induced crystallization (SIC) to achieve overstrain-driven strengthening and toughening (ODST)-a counterintuitive yet highly effective strategy for achieving macroscopic robustness. Moreover, implementing the ODST principle in a sustainable rubber a hierarchy of non-covalent interactions (4U1N-2) yields record-breaking mechanical performance, surpassing state-of-the-art reprocessable rubbers, with a tensile strength of 19.36 MPa, an elongation at break of 1529%, and a toughness of 106.67 MJ m. Notably, 4U1N-2 retains substantial mechanical properties after reprocessing, exhibiting performance that exceeds the original properties of most reprocessable rubbers. Moreover, it demonstrates outstanding self-healing capabilities, with strength and elongation at break recovering to 88% and 85%, respectively. This work pioneers a "strategic weakening for holistic strengthening" principle, providing a universal framework for designing high-performance, sustainable elastomers.

摘要

对具有卓越机械强度的可持续橡胶的追求受到内在矛盾的阻碍

动态共价网络实现了可回收性,但损害了机械性能,而高内聚能非共价网络则受到强度和延展性之间基本权衡的限制。在此,我们引入了一种由非共价网络的有目的设计主导的应变放大范式——一种通过降低内聚能和分级相互作用的协同作用来战略性地设计应力承载途径的方法。通过调节环氧化天然橡胶(ENR)中氢键网络的内聚能,我们激活了一种过应变驱动的应力重新分布机制,与应变诱导结晶(SIC)无缝耦合,以实现过应变驱动的强化和增韧(ODST)——一种实现宏观强度的反直觉但非常有效的策略。此外,在可持续橡胶中实施ODST原理——一种非共价相互作用层次结构(4U1N-2)产生了破纪录的机械性能,超过了最先进的可再加工橡胶,拉伸强度为19.36 MPa,断裂伸长率为1529%,韧性为106.67 MJ m。值得注意的是,4U1N-2在再加工后保留了相当大的机械性能,其性能超过了大多数可再加工橡胶的原始性能。此外,它还表现出出色的自愈能力,强度和断裂伸长率分别恢复到88%和85%。这项工作开创了一种“整体强化的策略性弱化”原则,为设计高性能、可持续的弹性体提供了一个通用框架。

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