A Novel Phase Change Composite with Ultrahigh Through-Plane Thermal Conductivity and Adjustable Flexibility

24 Pages Posted: 17 Jan 2023

See all articles by Lei Kang

Lei Kang

Peking University

Hongyu Niu

Peking University

Liucheng Ren

Peking University

Ruicong Lv

Peking University

Haichang Guo

Peking University

Shulin Bai

Peking University

Abstract

With the rapid development of micro-nano electronics, thermally conductive materials with remarkable through-plane thermal conductivity ( [[EQUATION]] ) and great flexibility are greatly urgent to effective thermal management. The fillers with high thermal conductivity (TC) are commonly assembled to achieve this target. However, the imperfect contact between the joint fillers will lead to high thermal resistance (R), hindering thermal transport. Herein, we fabricated thermal interface materials (TIMs) with ultra-high [[EQUATION]] (up to 168.4 W m-1 K-1) and adjustable flexibility by the combination of highly thermally conductive carbon fiber bundles (CF) and polymer encapsulated phase change materials (PCMs). The alignment of consecutive CF guarantees the continuity of thermal paths, greatly facilitating thermal transport. While the slantly slicing technique and softening effect of PCMs beyond phase transition temperature lead to an attenuated compression stress (1.6MPa@10% strain with a CF loading of 50wt%). What’s more, the latent heat absorbed by PCMs is also conducive to thermal management. Thus, during a CPU temperature-control experiment, the application of as-prepared TIMs manifests a temperature decline of 33.9 °C of CPU. This work opens a new perspective to fabricating TIMs with ultrahigh [[EQUATION]] and low compression stress (σ) by the combination of thermally induced flexible matrix and the slantly slicing technique of aligned CFs.

Keywords: Phase Change Composites, Flexibility, Thermal conductivity, Carbon fiber, thermal interface materials

Suggested Citation

Kang, Lei and Niu, Hongyu and Ren, Liucheng and Lv, Ruicong and Guo, Haichang and Bai, Shulin, A Novel Phase Change Composite with Ultrahigh Through-Plane Thermal Conductivity and Adjustable Flexibility. Available at SSRN: https://ssrn.com/abstract=4327258 or http://dx.doi.org/10.2139/ssrn.4327258

Lei Kang

Peking University ( email )

No. 38 Xueyuan Road
Haidian District
Beijing, 100871
China

Hongyu Niu

Peking University ( email )

No. 38 Xueyuan Road
Haidian District
Beijing, 100871
China

Liucheng Ren

Peking University ( email )

No. 38 Xueyuan Road
Haidian District
Beijing, 100871
China

Ruicong Lv

Peking University ( email )

No. 38 Xueyuan Road
Haidian District
Beijing, 100871
China

Haichang Guo

Peking University ( email )

No. 38 Xueyuan Road
Haidian District
Beijing, 100871
China

Shulin Bai (Contact Author)

Peking University ( email )

No. 38 Xueyuan Road
Haidian District
Beijing, 100871
China

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