弹性体
聚二甲基硅氧烷
电极
纳米技术
可伸缩电子设备
基质(水族馆)
超分子化学
材料科学
聚合物
薄膜
复合材料
化学
分子
数码产品
有机化学
物理化学
地质学
海洋学
作者
Xuzhou Yan,Zhiyuan Liu,Qiuhong Zhang,Jeffrey Lopez,Hui Wang,Hung‐Chin Wu,Simiao Niu,Hongping Yan,Sihong Wang,Ting Lei,Junheng Li,Dianpeng Qi,Pingao Huang,Jianping Huang,Yu Zhang,Yuanyuan Wang,Guanglin Li,Jeffrey B.‐H. Tok,Xiaodong Chen,Zhenan Bao
摘要
Herein, we report a de novo chemical design of supramolecular polymer materials (SPMs-1-3) by condensation polymerization, consisting of (i) soft polymeric chains (polytetramethylene glycol and tetraethylene glycol) and (ii) strong and reversible quadruple H-bonding cross-linkers (from 0 to 30 mol %). The former contributes to the formation of the soft domain of the SPMs, and the latter furnishes the SPMs with desirable mechanical properties, thereby producing soft, stretchable, yet tough elastomers. The resulting SPM-2 was observed to be highly stretchable (up to 17 000% strain), tough (fracture energy ∼30 000 J/m2), and self-healing, which are highly desirable properties and are superior to previously reported elastomers and tough hydrogels. Furthermore, a gold, thin film electrode deposited on this SPM substrate retains its conductivity and combines high stretchability (∼400%), fracture/notch insensitivity, self-healing, and good interfacial adhesion with the gold film. Again, these properties are all highly complementary to commonly used polydimethylsiloxane-based thin film metal electrodes. Last, we proceed to demonstrate the practical utility of our fabricated electrode via both in vivo and in vitro measurements of electromyography signals. This fundamental understanding obtained from the investigation of these SPMs will facilitate the progress of intelligent soft materials and flexible electronics.
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