自愈水凝胶
超分子化学
材料科学
纳米技术
可视化
压力(语言学)
机械转化
相变
不透明度
相(物质)
超分子组装
超分子聚合物
软质材料
自组装
金刚烷
多稳态
化学
作者
Sooyeon Noh,Akihide Sugawara,Naoaki Ishihara,Takashi Konishi,Yuki Ueda,Ryuhei Motokawa,Yoshinori Takashima,Hiroshi Uyama
摘要
The visualization of mechanical stress in soft materials is highly desirable; however, real-time optical readouts using conventional sensing approaches are problematic because mechanophore-based systems typically require strong threshold-type activation with slow recovery. Herein, we report supramolecular hydrogels that enable the continuous and reversible visualization of mechanical stress in real time via stretch-induced phase separation. Supramolecular switching mechanotransduction (SSM) has been proposed as the key mechanism. Mechanical stimuli are transduced into a distinct network state transition through host-guest complexes between β-cyclodextrin and adamantane as supramolecular switches. In this design, guest-functionalized polymers undergo on-off transition between the hydrated and dehydrated states via host-guest complexation and decomplexation. Responsive polymers, incorporated into the hydrogel network via supramolecular bonds, function as reversible cross-links and switches. Upon stretching, the hydrogels macroscopically transition from transparent to opaque owing to the dehydration-induced heterogeneity within the responsive domains. The linear and reversible changes in the opacity with applied stress-attributable to sacrificial and reversible supramolecular switching-enable the visualization of stress distributions. This design principle offers a platform for spatiotemporally resolved mapping of the mechanical states in hydrogels with an intuitive, instrument-free readout, and lays the foundation for monitoring, timely intervention, and safer operation of soft-material systems.
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