蠕动
材料科学
应力松弛
金属
热稳定性
阿累尼乌斯方程
溶剂
化学工程
活化能
复合材料
化学
冶金
有机化学
工程类
作者
Sheng Wang,Songqi Ma,Qiong Li,Xiwei Xu,Binbo Wang,Kaifeng Huang,Yanlin liu,Jin Zhu
出处
期刊:Macromolecules
[American Chemical Society]
日期:2020-04-09
卷期号:53 (8): 2919-2931
被引量:200
标识
DOI:10.1021/acs.macromol.0c00036
摘要
Vitrimers undergoing dynamic bond exchange enable reprocessing and recycle of thermosets. However, vitrimers are susceptible to creep, leading to their poor dimensional stability, which limits their applications. Here, a facile method via integration of metal complexes was utilized to address this issue, and cross-linked polyimine was selected as an example of vitrimer. Three different metal complexes were introduced into a polyimine vitrimer via a one-pot preparation involving the formation of metal complexes and crosslinking of polyimine. The addition of 0.5 mol % Cu2+ relative to imine bond reduced creep degree from 30% to 20% at 60 degrees C, and the creep resistance was enhanced with increasing Cu2+ content. Loading 5 mol % Cu2+ increased the initial creep temperature from 60 to about 100 degrees C and raised the Arrhenius activation energy (E-a) for stress relaxation from 52.3 to 67.7 kJ mol(-1). The ability of different metal complexes to suppress creep followed the order of Fe3+ > Cu2+ > Mg2+, and the initial creep temperature reached around 120 degrees C for vitrimer with 5 mol % of Fe3+. Meanwhile, the polyimine-metal complex vitrimers still exhibited excellent reprocessing recyclability. Moreover, the introduction of coordination structures enhanced the thermal and mechanical properties, solvent, and acid resistance. Thus, metal coordination is an efficient approach to achieve high-temperature creep resistance, excellent thermal and mechanical properties, and chemical stability for vitrimers based on the Schiff base.
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