Yang Xing, Ren Jiawen, Wan Baoquan, Qin Sichen, Wang Qian, Huang Wenjie, Gao Jinghui, Xia Bing, Zha Jun-Wei
School of Chemistry and Biological Engineering, University of Science and Technology Beijing, Beijing 100083, P. R. China.
Shunde Innovation School, University of Science and Technology Beijing, Foshan 528300, P. R. China.
Mater Horiz. 2024 Oct 14;11(20):5058-5069. doi: 10.1039/d4mh00409d.
Polydimethylsiloxane (PDMS) elastomers with high mechanical and healing properties are developed as smart materials for electrical power systems and electronic devices to address electrical or mechanical damage. However, the challenge is to reconcile the conflicting molecular mechanisms of mechanical and healing properties in the development of PDMS elastomers. This study adopts the "rigid-while-flexible" mutual network structure by copolymerizing the rigid polyimide (PI) with flexible segments with dynamic reversible crosslinking designed on the PDMS backbones. This elastomer (designated PSiPI) exhibits high toughness, tensile strength and elongation at break, as well as excellent healing efficiency and recyclability. Moreover, the PSiPI elastomer also exhibits good insulation and corona damage healing properties. Taking advantage of the recyclability and healing properties of PSiPI elastomers, healable superhydrophobic coatings with contact angles greater than 150° have been prepared by compositing PSiPI elastomers with SiO. Likewise, combining the elastomer with conductive materials can create a healing flexible conductor. This "rigid-while-flexible" design approach provides important inspiration for the development of high-performance, sustainable and environmentally friendly PDMS elastomers for electrical and electronic applications.
具有高机械性能和自愈性能的聚二甲基硅氧烷(PDMS)弹性体被开发为用于电力系统和电子设备的智能材料,以应对电气或机械损伤。然而,挑战在于在PDMS弹性体的开发中协调机械性能和自愈性能相互冲突的分子机制。本研究通过将刚性聚酰亚胺(PI)与在PDMS主链上设计的具有动态可逆交联的柔性链段共聚,采用了“刚柔并济”的互穿网络结构。这种弹性体(命名为PSiPI)表现出高韧性、拉伸强度和断裂伸长率,以及优异的自愈效率和可回收性。此外,PSiPI弹性体还表现出良好的绝缘和电晕损伤自愈性能。利用PSiPI弹性体的可回收性和自愈性能,通过将PSiPI弹性体与SiO复合制备了接触角大于150°的可自愈超疏水涂层。同样,将该弹性体与导电材料结合可以制造出可自愈的柔性导体。这种“刚柔并济”的设计方法为开发用于电气和电子应用的高性能、可持续且环保的PDMS弹性体提供了重要的启示。