材料科学
弹性体
超分子化学
韧性
自愈
分子间力
超分子聚合物
稳健性(进化)
纳米技术
复合材料
离子键合
分子
医学
生物化学
化学
替代医学
有机化学
病理
基因
离子
物理
量子力学
作者
Jianfeng Fan,Jiarong Huang,Zhou Gong,Liming Cao,Yukun Chen
标识
DOI:10.1021/acsami.0c15552
摘要
A robust, tough, and self-healable elastomer is a promising candidate for substrate in flexible electronic devices, but there is often a trade-off between mechanical properties (robustness and toughness) and self-healing. Here, a poly(dimethylsiloxane) (PDMS) supramolecular elastomer is developed based on metal-coordinated bonds with relatively high activation energy. The strong metal–coordination complexes and their corresponding ionic clusters acting as the cross-linking points strengthen the resultant supramolecular networks, which achieves superior mechanical robustness (2.81 MPa), and their consecutive dynamic rupture and reconstruction efficiently dissipate strain energy during the stretching process, which leads to an impressive fracture toughness (32 MJ/m3). Additionally, the reversible intermolecular interactions (weak hydrogen bonds and strong sacrificial coordination complexes/clusters) can break and re-form upon heating; thus, the elastomer self-heals at a moderate temperature with the highest healing efficiency of 95%. As such, the potential of the as-prepared supramolecular elastomer for a substrate material of flexible electronic devices is discovered.
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