Qiu Lvchao, Zhou Yutong, Zhao Zhoufeng, Wang Qi, Chu Lijun, Wen Shipeng
State Grid Zhejiang Electric Power Co., Ltd., Research Institute, Hangzhou 310014, China.
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China.
Polymers (Basel). 2024 May 7;16(10):1309. doi: 10.3390/polym16101309.
Self-healing polydimethylsiloxane (PDMS) has garnered significant attention due to its potential applications across various fields. In this study, a functionalized modification of PDMS containing di-aminos was initially conducted using 2,6-pyridinedicarbonyl chloride to synthesize pyridine-PDMS (Py-PDMS). Subsequently, rare earth metal europium ions (Eu) were incorporated into Py-PDMS. Due to the coordination interaction between Eu and organic ligands, a coordination cross-linking network was created within the Py-PDMS matrix, resulting in the fabrication of Eu-Py-PDMS elastomer. At a molar ratio of Eu to ligands of 1:1, the tensile strength of Eu-Py-PDMS reached 1.4 MPa, with a fracture elongation of 824%. Due to the dynamic reversibility of coordination bonds, Eu-Py-PDMS with a metal-to-ligand molar ratio of 1:2 exhibited varying self-healing efficiencies at different temperatures. Notably, after 4 h of repair at 60 °C, its self-healing efficiency reached nearly 100%. Furthermore, the gas barrier properties of Eu-Py-PDMS with a molar ratio of 1:1 was improved compared with that of Eu-Py-PDMS with a molar ratio of 1:1. This study provides an effective strategy for the design and fabrication of PDMS with high mechanical strength, high gas barrier properties, and exceptional self-healing efficiency.
自愈合聚二甲基硅氧烷(PDMS)因其在各个领域的潜在应用而备受关注。在本研究中,首先使用2,6 - 吡啶二甲酰氯对含二氨基的PDMS进行功能化改性,以合成吡啶 - PDMS(Py - PDMS)。随后,将稀土金属铕离子(Eu)引入Py - PDMS中。由于Eu与有机配体之间的配位相互作用,在Py - PDMS基体中形成了配位交联网络,从而制备出Eu - Py - PDMS弹性体。当Eu与配体的摩尔比为1:1时,Eu - Py - PDMS的拉伸强度达到1.4 MPa,断裂伸长率为824%。由于配位键的动态可逆性,金属与配体摩尔比为1:2的Eu - Py - PDMS在不同温度下表现出不同的自愈合效率。值得注意的是,在60℃修复4小时后,其自愈合效率几乎达到100%。此外,与摩尔比为1:1的Eu - Py - PDMS相比,摩尔比为1:1的Eu - Py - PDMS的气体阻隔性能得到了改善。本研究为设计和制备具有高机械强度、高气阻隔性能和优异自愈合效率的PDMS提供了一种有效策略。