粘弹性
材料科学
弹性体
消散
材料设计
复合材料
本构方程
降级(电信)
多尺度建模
合理设计
断裂(地质)
材料性能
流变学
工作(物理)
动态力学分析
分子动力学
弹性(物理)
断裂力学
材料失效理论
氢键
表征(材料科学)
机制(生物学)
聚氨酯
成核
压力(语言学)
变形(气象学)
作者
Zhuoran Yang,Qianru Yin,Yifeng Li,Jiaxin Shi,Jun Xu,Zhanli Liu
出处
期刊:Macromolecules
[American Chemical Society]
日期:2026-05-29
卷期号:59 (11): 6285-6301
标识
DOI:10.1021/acs.macromol.6c00827
摘要
Achieving sustained viscoelasticity in biodegradable elastomers is critical for stable energy dissipation in clinical performance (e.g., sutures, patches, and strips). Yet rational material design and mechanistic understanding required to maintain this viscoelastic response during degradation have not been systematically investigated. Here, a framework integrating molecular design, experimental characterization, and constitutive modeling is proposed to elucidate the mechanisms underlying the sustained viscoelasticity of polyurethane elastomers (PUEs) during degradation. First, a multifunctional hard-segment design with tailored phase mixing and dense hydrogen bonding is implemented to ensure the sustained viscous response and high fracture strength even at later degradation stages (>80%). Subsequently, a domain-specific micromechanical model is developed, explicitly incorporating two distinct viscous mechanisms: short-term confinement-enhanced segmental friction and long-term dynamic dissociation of hydrogen-bonded clusters. By defining degradation as a physical internal state variable, the model quantitatively links microstructural evolution, specifically bond scission-induced friction loss and cluster loosening, to the macroscopic viscoelastic response. Finally, the model elucidates a fundamental compensatory mechanism wherein the robust hydrogen bonding in hard domains counterbalances network weakening, thereby preserving both viscous characteristics and fracture strength throughout the degradation process. This work provides both theoretical and practical guidance for the rational design of biodegradable PUEs.
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