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克诺文纳格尔碳-碳复分解反应制备的具有高刚性、韧性和延展性的玻璃态 Vitrimers 材料。

Knoevenagel C═C Metathesis Enabled Glassy Vitrimers with High Rigidity, Toughness, and Malleability.

作者信息

Wang Sheng, Feng Hongzhi, Li Bofan, Lim Jason Y C, Rusli Wendy, Zhu Jin, Hadjichristidis Nikos, Li Zibiao

机构信息

Institute of Sustainability for Chemicals, Energy and Environment (ISCE2), Agency for Science, Technology and Research (A*STAR), 1 Pesek Road, Jurong Island, Singapore 627833, Republic of Singapore.

Key Laboratory of Bio-Based Polymeric Materials Technology and Application of Zhejiang Province, Laboratory of Polymers and Composites, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, P. R. China.

出版信息

J Am Chem Soc. 2024 Jun 12;146(23):16112-16118. doi: 10.1021/jacs.4c03503. Epub 2024 May 27.

Abstract

Thermosets, characterized by their permanent cross-linked networks, present significant challenges in recyclability and brittleness. In this work, we explore a polarized Knoevenagel C═C metathesis reaction for the development of rigid yet tough and malleable thermosets. Initial investigation on small molecule model reactions reveals the feasibility of conducting the base-catalyzed C═C metathesis reaction in a solvent-free environment. Subsequently, thermosetting poly(α-cyanocinnamate)s (PCCs) were synthesized via Knoevenagel condensation between a triarm cyanoacetate star and a dialdehyde. The thermal and mechanical properties of the developed PCCs can be easily modulated by altering the structure of the dialdehyde. Remarkably, the introduction of ether groups into the PCC leads to a combination of high rigidity and toughness with Young's modulus of ∼1590 MPa, an elongation at break of ∼79%, and a toughness reaching ∼30 MJ m. These values are competitive to traditional thermosets, in Young's modulus but far exceed them in ductility and toughness. Moreover, the C═C metathesis facilitates stress relaxation within the bulk polymer networks, thus rendering PCCs excellent malleability and reprocessability. This work overcomes the traditional limitations of thermosets, introducing groundbreaking insights for the design of rigid yet tough and malleable thermosets, and contributing significantly to the sustainability of materials.

摘要

热固性材料以其永久交联网络为特征,在可回收性和脆性方面存在重大挑战。在这项工作中,我们探索了一种极化的克诺文纳格尔C═C复分解反应,以开发刚性但坚韧且可塑的热固性材料。对小分子模型反应的初步研究揭示了在无溶剂环境中进行碱催化C═C复分解反应的可行性。随后,通过三臂氰基乙酸酯星状物与二醛之间的克诺文纳格尔缩合反应合成了热固性聚(α-氰基肉桂酸酯)(PCC)。通过改变二醛的结构,可以轻松调节所制备PCC的热性能和机械性能。值得注意的是,在PCC中引入醚基会导致高刚性和韧性的结合,其杨氏模量约为1590 MPa,断裂伸长率约为79%,韧性达到约30 MJ/m³。这些数值在杨氏模量方面与传统热固性材料具有竞争力,但在延展性和韧性方面远远超过它们。此外,C═C复分解促进了本体聚合物网络内的应力松弛,从而使PCC具有出色的延展性和可再加工性。这项工作克服了热固性材料的传统局限性,为刚性但坚韧且可塑的热固性材料设计引入了开创性的见解,并为材料的可持续性做出了重大贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cab5/11177252/200d53300576/ja4c03503_0001.jpg

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