材料科学
共价键
自愈水凝胶
变形(气象学)
自愈
相(物质)
小角X射线散射
复合材料
工作(物理)
放松(心理学)
化学物理
应力松弛
纳米技术
散射
蠕动
高分子化学
光学
热力学
化学
物理
医学
替代医学
病理
心理学
社会心理学
有机化学
作者
Zhaoyang Chu,Kaining He,Siqi Huang,Wenhua Zhang,Xueyu Li,Kunpeng Cui
标识
DOI:10.1002/marc.202400327
摘要
Abstract Tough and self‐healing hydrogels are typically sensitive to loading rates or temperatures due to the dynamic nature of noncovalent bonds. Understanding the structure evolution under varying loading conditions can provide valuable insights for developing new tough soft materials. In this study, polyampholyte (PA) hydrogel with a hierarchical structure is used as a model system. The evolution of the microscopic structure during loading is investigated under varied loading temperatures. By combining ultra‐small angle X‐ray scattering (USAXS) and Mooney–Rivlin analysis, it is elucidated that the deformation of bicontinuous hard/soft phase networks is closely correlated with the relaxation dynamics or strength of noncovalent bonds. At high loading temperatures, the gel is soft and ductile, and large affine deformation of the phase‐separated networks is observed, correlated with the fast relaxation dynamics of noncovalent bonds. At low loading temperatures, the gel is stiff, and nonaffine deformation occurs from the onset of loading due to the substantial breaking of noncovalent bonds and limited chain mobility as well as weak adaptation of phase deformation to external stretch. This work provides an in‐depth understanding of the relationship between structure and performance of tough and self‐healing hydrogels.
科研通智能强力驱动
Strongly Powered by AbleSci AI