跳到主要导航 跳到搜索 跳到主要内容

Ion-mediated topological optimization of graphene fiber frameworks for high-performance thermal interface materials at ultralow loading

  • Yongkang Han
  • , Tiehu Li
  • , Lizhe Li
  • , Yanying Han
  • , Jiahe Chen
  • , Yanan Liu
  • , Yuhui Liu
  • , Alei Dang
  • Northwestern Polytechnical University Xian

科研成果: 期刊稿件文章同行评审

摘要

The escalating heat flux in miniaturized electronics requires high-performance thermal interface materials (TIMs) for efficient thermal management. However, conventional polymer composites suffer from a persistent trade-off between thermal conductivity, filler loading and processability. Herein, we report a novel Ca2+-mediated assembly strategy to fabricate topologically optimized graphene fiber frameworks (GFFs) for polydimethylsiloxane (PDMS) composites. By precisely regulating the fusion degree, this approach transforms discrete fiber networks into interconnected skeletons, establishing continuous through-plane phonon transport channels while minimizing interfacial scattering. Remarkably, the produced GFF/PDMS composite achieves a superior through-plane thermal conductivity of 5.91 W m−1 K−1 at an ultralow filler loading of only 2.5 wt%, representing a ∼30-fold enhancement compared to pure PDMS. More importantly, due to the established vertical conduction pathways and excellent surface conformability, the contact thermal resistance of GFF2/PDMS (55.11 K mm2 W−1) is reduced by one order of magnitude compared to commercial counterparts. Consequently, in real-time chip dissipation tests, the composite delivers exceptional cooling efficiency, yielding a substantial temperature reduction of 66.5 °C relative to the pure matrix. This work provides a scalable paradigm for constructing low-loading, high-efficiency thermal management materials via topological structure design.

源语言英语
期刊论文编号114048
期刊Composites Part B: Engineering
326
DOI
出版状态已出版 - 11月 2026

学术指纹

探究 'Ion-mediated topological optimization of graphene fiber frameworks for high-performance thermal interface materials at ultralow loading' 的科研主题。它们共同构成独一无二的学术指纹。

引用此