Micro-Nano Cavity-Engineered Graphene Phase-Change Composite Film for Bifunctional Thermal Management in Electronics.
basic_science · Level V
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- Record sourced from PubMed, PMID 41735020.
- Also identified by DOI 10.1021/acsnano.5c19376.
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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<sup>-1</sup>, anisotropic thermal conductivity (65.5 W m<sup>-1</sup> K<sup>-1</sup> in-plane; 21.9 W m<sup>-1</sup> K<sup>-1</sup> through-plane), and minimized interfacial thermal resistance (0.575 K cm<sup>2</sup> W<sup>1-</sup>). Validated under practical CPU conditions (36 W cm<sup>-2</sup>), 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.