材料科学
纳米纤维
电磁屏蔽
电子设备和系统的热管理
热稳定性
柔性电子器件
纳米技术
数码产品
封装(网络)
消散
分子动力学
热的
芳纶
复合数
复合材料
材料设计
热能储存
纳米复合材料
储能
科技与社会
纤维素
纳米颗粒
纳米-
相容性(地球化学)
工作(物理)
张拉整体
高能
热导率
热传导
作者
Linghan Bai,Luyao Zhang,Shijiao Zhang,Wenlong Xu,Zhibiao Ma,Lvye Dou,Jianqiang Li
摘要
ABSTRACT The pursuit of flexible phase‐change materials (PCMs) for advanced thermal management is fundamentally constrained by a longstanding “impossible trinity”: achieving simultaneous high flexibility, high thermal conductivity, and large latent‐heat storage in a single material remains an unmet goal. Here, we break this paradigm via a “dynamic adaptable encapsulation” strategy. A double‐network skeleton of cellulose nanofibers (CNF) and aramid nanofibers (ANF), cross‐linked by reversible Fe 3+ ‑tannic acid (TA) coordination, is designed to create an adaptive matrix. This unique architecture concurrently provides dynamic stress dissipation for extreme stretchability (≈175% elongation), efficient phonon‐transfer pathways for rapid heat dissipation (3.50 W/(m·K)), and dense yet compliant confinement for preserving a high phase‐change enthalpy (>120 J/g). Molecular dynamics simulations reveal that the reversible metal‑phenolic bonds, which not only maintain strong interfacial adhesion but also percolate heat‐transfer networks under deformation, offering atomic‑scale insights into the synergy. Consequently, the composite film exhibits exceptional cyclic stability and reliable conformability to complex surfaces. Leveraging this synergistic foundation, the film demonstrates multifunctional capabilities, including efficient solar‐thermal conversion (94.59%) and effective electromagnetic interference shielding (≈30 dB), validated in multi‑scenario applications from flexible electronics cooling to high‑power device thermal regulation. This work establishes a generalizable design principle for adaptive thermal‐management materials.
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