粘弹性
消散
介观物理学
瞬态(计算机编程)
材料科学
动能
统计物理学
化学物理
星团(航天器)
灵活性(工程)
分子动力学
流变学
聚合物
能量平衡
能量(信号处理)
机械
物理
明细余额
弹性(材料科学)
多尺度建模
软机器人
变形(气象学)
作者
Hoyeon Lee,Sanghun Lee
出处
期刊:Macromolecules
[American Chemical Society]
日期:2026-06-26
卷期号:59 (13): 7716-7728
被引量:1
标识
DOI:10.1021/acs.macromol.6c00870
摘要
Transient polymer networks cross-linked by reversible bonds offer an innovative balance of adaptability and mechanical robustness, yet translating molecular-level association energies into macroscopic viscoelasticity remains challenging. Here, we utilize coarse-grained molecular dynamics simulations to systematically investigate highly cross-linked transient networks, directly comparing them with a permanently cross-linked static network. We demonstrate that tuning the thermodynamic association strength of the transient cross-links (ε) governs the intrinsic bond lifetimes, and the resulting kinetic competition between this lifetime and the observation time frame fundamentally dictates the network’s mesoscopic architecture and macroscopic energy dissipation mechanisms. Strong physical interactions (ε = 10 k B T ) drive the formation of bulky multiplet nodes, inducing severe dynamic heterogeneity and a strong “cage effect”. Under large deformation, this leads to time-driven topological restructuring, yielding superior stiffness, robust cluster alignment, and large energy dissipation without catastrophic yielding. Conversely, moderately associating networks (ε = 5 k B T ) exhibit strain-driven dynamic yielding via continuous bond exchange, enabling topological remodeling and fluid-like transitions characterized by a distinct viscoelastic crossover. These molecular-level insights provide a quantitative framework for designing advanced soft materials, demonstrating how specific noncovalent interaction strengths can be engineered to precisely control the trade-off between structural resilience and dynamic adaptability.
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