材料科学
消散
韧性
分子动力学
联轴节(管道)
微观结构
极限抗拉强度
纳米技术
工作(物理)
化学物理
复合材料
离子键合
共价键
损伤容限
复合数
级联
能量(信号处理)
同种类的
缩放比例
表面能
材料设计
纳米-
延展性(地球科学)
压力(语言学)
弹性能
机械能
功能(生物学)
离子强度
纳米棒
多尺度建模
作者
Lingyong Kong,Shijuan Su,Nanjun Shen,Wenfeng Zhang,潘海曙,Ling Fan,Ronghua Jin
摘要
ABSTRACT Addressing the intrinsic challenge of reconciling high damping performance with extreme environmental tolerance in soft materials, we propose a synergistic reinforcement strategy that integrates conformation‐change mediation with dynamic interfacial coupling for energy dissipation. Utilizing alkenylated cyclodextrin (CM) as a multifunctional structural unit, the system undergoes a stress‐induced conformational transition, establishing intrinsic energy‐dissipating units. Concurrently, host‐guest interactions bolster the interfacial stability of the ionic liquid, while thiol‐ene covalent crosslinking further optimizes interfacial compatibility. Moreover, the abundant multi‐hydroxyl sites cooperatively construct a multi‐tiered reversible hydrogen‐bonding network, culminating in an integrated crosslinked microstructure that enables homogeneous stress transfer and cascade energy dissipation. The resultant composite ionogel simultaneously achieves exceptional damping capacity (>94%), ultrahigh impact strength (>110 MPa), a low swelling ratio (<13.7%), outstanding low‐temperature tolerance (Tg < −78.8°C), and desirable mechanical properties, including a tensile strength of ∼7.5 MPa and a toughness of 26.9 MJ/m 3 . Through molecular dynamics simulations and comprehensive multi‐dimensional characterizations, we elucidate the conformation‐mediated microscopic energy‐dissipation mechanism. This work significantly broadens the application prospects of ionogels in impact protection, damping and energy absorption, extreme environments, and flexible wearable electronic sensing.
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