材料科学
消散
导电体
弹性体
变形(气象学)
断裂(地质)
复合数
电导率
压力(语言学)
电容感应
纳米复合材料
有限元法
极限抗拉强度
环氧树脂
堆积
电容器
复合材料
共晶体系
控制器(灌溉)
纤维增强塑料
深共晶溶剂
天然橡胶
原材料
作者
Jingyi Wan,Xiaoming Wang,Yu Feng,Ling Weng,Xiaoyu Yu,Xiaorui Zhang,Dong Yue,Hang Xu,Jichen Shi
标识
DOI:10.1021/acsapm.5c04386
摘要
The current elastomers use weak cross-linking to ensure flexibility, resulting in poor strength and tear resistance. Therefore, this article presents a self-healing composite elastomer based on a polymerizable deep eutectic solvent (PDES) through constructing a double hydrogen bond network. We used acrylic acid and choline chloride DES (AA-ChCl DES) as the precursor system of polymer, Inositol (INO) as a hydrogen bond supplement, and 1-vinylimidazole (VIM) as a rigid reinforcement to fill the cross-linked network of the elastomer, successfully conducting an elastomer with excellent performance. We named it the ACVI elastomer. Compared with traditional organic solvents, using low-melting-point solvents as substrates can greatly reduce the toxicity of the product. This product has a fracture strain over 300% and a fracture stress of up to 1.12 MPa. The finite element method was used to simulate uniaxial tensile fracture, providing a more accurate basis for the dynamic analysis of ACVI. Meanwhile, the product has UV transmittance over 80% and conductivity of 0.52 S/m, excellent weather resistance at −5 to 100 °C, and efficient self-healing ability. The self-healing efficiency of 18 h can reach over 63% and has a high sensitivity coefficient (Gauge Factor ≈ 1.48). So, it has broad application prospects in fields such as human health monitoring, wearable electronic devices, biomedicine, and soft robots.
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