材料科学
导电体
产量(工程)
电子设备和系统的热管理
消散
接口(物质)
热的
复合材料
压力(语言学)
热力学
机械工程
工程类
毛细管作用
哲学
物理
语言学
毛细管数
作者
Yimin Wei,Yunsong Pang,Xiangliang Zeng,Chen Zeng,Linlin Ren,Jianbin Xu,Rong Sun,Xiaoliang Zeng
标识
DOI:10.1002/adfm.202412156
摘要
Abstract Thermal interface materials (TIMs) paly an indispensable role in improving overall performance of chip, due to the boom of cloud service, machine learning, and artificial intelligence. However, traditional TIMs tend to behave as liquid‐like or solid‐like features, which cannot meet the new requirement of both long‐term stability and excellent thermal‐conduction property. Here, a thermally conductive yield stress fluid consisting of phenyl‐vinyl polydimethylsiloxane polymer and aluminum oxide fillers is reported. This material exhibits reversible liquid–solid transition with a yield‐stress value of 87.32 Pa, and low thermal resistance (0.16 K cm 2 W −1 ). The reversible liquid–solid transition and low thermal resistance are both attributed to the formation of the filler network, as demonstrated by using rheology and two‐phase model. Furthermore, a unifying description of the liquid–solid transition is proposed based on a jamming phase diagram, by considering three factors including filler fraction, temperature, and stress. The yield‐stress fluids combine the desired dispensing due to their liquid‐like behavior and the excellent long‐term stability due to their solid‐like feature. An insight is further provided into the application of this yield‐stress fluids in high‐performance TIMs.
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