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基于具有本征光热自修复能力的双动态网络的蓖麻油基环氧 Vitrimer

Castor Oil-Based Epoxy Vitrimer Based on Dual Dynamic Network with Intrinsic Photothermal Self-Healing Capability.

作者信息

Shao Yingqing, Zhu Haoxin, Chen Kang, Jin Tianyi, Wang Zhiwen, Luo Zhixin, Wang Jinhui, Sun Haoyuan, Wei Shuangying, Gao Zhenhua

机构信息

College of Material Science and Engineering, Northeast Forestry University, Harbin 150040, China.

Engineering Research Center of Advanced Wooden Materials, Ministry of Education, Northeast Forestry University, Harbin 150040, China.

出版信息

Polymers (Basel). 2025 Mar 27;17(7):897. doi: 10.3390/polym17070897.

Abstract

The development of sustainable epoxy vitrimers with outstanding mechanical strength and facile self-healing capabilities are of great significance for prolonging the lifespan and enhancing the reliability of electronic devices. In this study, we present a castor oil-derived epoxy vitrimer (ASB-ECO) featuring dual dynamic networks enabled by rationally designed ester-imine bonds and an aromatic Schiff base-conjugated crosslinker architecture. This molecular design strategy effectively enhances the mechanical properties of vegetable oil-based vitrimers and endows them with controllable self-healing capabilities under photothermal conversion. The 1.0-ASB-ECO system demonstrates dynamic characteristics with an activation energy (Ea) of 37.25 kJ/mol and a topological freezing transition temperature (Tv) of 123.13 °C. The material exhibits a photothermal conversion efficiency (ηPT = 61.42%) and can achieve a self-healing rate of 100% under visible-light radiation. In addition, 1.0-ASB-ECO displays a dielectric constant (Dk) of 5.54 and a loss tangent (Df) of 0.025 at 106 Hz. This study on biomass-based epoxy vitrimers presents a novel approach to developing electronic materials, achieving a combination of high mechanical performance, sustainability, and photothermal self-healing properties.

摘要

开发具有出色机械强度和便捷自愈能力的可持续环氧类玻璃态物质,对于延长电子设备的使用寿命和提高其可靠性具有重要意义。在本研究中,我们展示了一种源自蓖麻油的环氧类玻璃态物质(ASB-ECO),其具有由合理设计的酯-亚胺键和芳香族席夫碱共轭交联剂结构实现的双动态网络。这种分子设计策略有效地增强了植物油基玻璃态物质的机械性能,并使其在光热转换下具有可控的自愈能力。1.0-ASB-ECO体系表现出动态特性,其活化能(Ea)为37.25 kJ/mol,拓扑冻结转变温度(Tv)为123.13°C。该材料具有光热转换效率(ηPT = 61.42%),在可见光辐射下可实现100%的自愈率。此外,1.0-ASB-ECO在106 Hz时的介电常数(Dk)为5.54,损耗角正切(Df)为0.025。这项关于生物质基环氧类玻璃态物质的研究提出了一种开发电子材料的新方法,实现了高机械性能、可持续性和光热自愈性能的结合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4c60/11991231/856202394007/polymers-17-00897-g001.jpg

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