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Updated: Feb 26, 2026

Optimized Fabrication Procedure for High-Quality Graphene-based Moiré Superlattice Devices
Published on: July 11, 2025
Micro-Nano Cavity-Engineered Graphene Phase-Change Composite Film for Bifunctional Thermal Management in Electronics
Xinyu Zhang1,2, Zhixu Zhang1, Shaoqian Chen1
1School of Materials Science and Engineering, Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering, Academy for Advanced Interdisciplinary Studies, Beijing Science and Engineering Center for Nanocarbons, Peking University, Beijing 100871, P. R. China.
Abstract:
The growing demands in high-power electronics thermal management necessitate thermal interface materials (TIMs) that synergize high thermal conductivity with efficient temperature-regulation capability. While phase-change materials (PCMs) offer substantial latent heat storage, their inherent low thermal conductivity restricts practical application. To address this challenge, we developed a high-performance phase-change TIM by vacuum-impregnating Tris(hydroxymethyl)aminomethane (Tris) into a structurally engineered three-dimensional graphene micronano-cavity film (GMF), featuring tunable pore architecture and a controlled volumetric-expansion coefficient (VEC) to optimally balance thermal transport and phase-change-induced thermal-energy buffering. The optimized GMF-TIM demonstrated the highest performance of 196.2 J g-1, anisotropic thermal conductivity (65.5 W m-1 K-1 in-plane; 21.9 W m-1 K-1 through-plane), and minimized interfacial thermal resistance (0.575 K cm2 W1-). Validated under practical CPU conditions (36 W cm-2), the GMF-TIM demonstrates an extra ∼8.6 °C temperature reduction compared to commercial TIM counterparts. This study highlights the current GMFs as a transformative solution for next-generation TIMs to resolve critical bottlenecks in advanced electronics thermal management.

