Zeng Yanning, Li Jiawei, Liu Shuxin, Yang Bin
Key Laboratory of New Processing Technology for Nonferrous Metal and Materials (Ministry of Education), College of Material Science and Engineering, Guilin University of Technology, Guilin 541004, China.
Polymers (Basel). 2021 Oct 1;13(19):3386. doi: 10.3390/polym13193386.
Rosin is an abundantly available natural product. In this paper, for the first time, a rosin derivative is employed as the main monomer for preparation of epoxy vitrimers to improve the mechanical properties of vitrimers. Novel epoxy vitrimer networks with dynamic reversible covalent boronic ester bonds are constructed by a reaction between thiols in 2,2'-(1,4-phenylene)-bis (4-mercaptan-1,3,2-dioxaborolane) (BDB) as a curing agent and epoxy groups in the rosin derivative. The rosin-based epoxy vitrimer networks are fully characterized by Fourier transform infrared spectroscopy (FTIR), an equilibrium swelling experiment, and dynamic mechanical analysis (DMA). The obtained rosin-based epoxy vitrimers possess superior thermostability and good mechanical properties. Due to transesterification of boronic ester bonds, rosin epoxy vitrimer network topologies can be altered, giving welding, recycle, self-healing, and shape memory abilities to the fabricated polymer. Besides, the effects of treating time and temperature on welding capability is investigated, and it is found that the welding efficiency of the 20% C-FPAE sample is >93% after treatment for 12 h at 160 °C. Moreover, through a hot press, the pulverized samples of 20% C-FPAE can be reshaped several times and most mechanical properties are restored after reprocessing at 200 °C for 60 min. Finally, chemical degradation is researched for the rosin-based epoxy vitrimers.
松香是一种储量丰富的天然产物。在本文中,首次使用松香衍生物作为制备环氧类热致互穿网络聚合物的主要单体,以改善热致互穿网络聚合物的机械性能。通过2,2'-(1,4-亚苯基)-双(4-巯基-1,3,2-二氧硼戊环)(BDB)中的硫醇作为固化剂与松香衍生物中的环氧基团之间的反应,构建了具有动态可逆共价硼酸酯键的新型环氧类热致互穿网络聚合物网络。通过傅里叶变换红外光谱(FTIR)、平衡溶胀实验和动态力学分析(DMA)对基于松香的环氧类热致互穿网络聚合物网络进行了全面表征。所制备的基于松香的环氧类热致互穿网络聚合物具有优异的热稳定性和良好的机械性能。由于硼酸酯键的酯交换反应,松香环氧类热致互穿网络聚合物的网络拓扑结构可以改变,从而赋予所制备的聚合物焊接、回收利用、自修复和形状记忆能力。此外,研究了处理时间和温度对焊接能力的影响,发现20% C-FPAE样品在160℃处理12 h后的焊接效率>93%。此外,通过热压,20% C-FPAE的粉碎样品可以多次重塑,并且在200℃再加工60 min后,大多数机械性能得以恢复。最后,对基于松香的环氧类热致互穿网络聚合物进行了化学降解研究。