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具有所需键合线厚度和超低应用热阻的干接触式热界面材料。

Dry-Contact Thermal Interface Material with the Desired Bond Line Thickness and Ultralow Applied Thermal Resistance.

作者信息

Dou Zhengli, Zhang Bin, Xu Pengfei, Fu Qiang, Wu Kai

机构信息

College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.

Nanjing Marine Radar Institute, Nanjing 210014, China.

出版信息

ACS Appl Mater Interfaces. 2023 Dec 13;15(49):57602-57612. doi: 10.1021/acsami.3c13298. Epub 2023 Nov 29.

DOI:10.1021/acsami.3c13298
PMID:38019643
Abstract

Efforts to directly utilize thixotropic polymer composites for out-of-plane thermal transport applications, known as thermal interface materials (TIMs), have been impeded by their mediocre applied thermal resistance () in a sandwiched structure. Different from traditional attempts at enhancing thermal conductivity, this study proposes a low-bond line thickness (BLT) path for mitigating the sandwiched thermal impedance. Taking the most common TIM, polydimethylsiloxane/aluminum oxide/zinc oxide (PDMS/AlO/ZnO), as an example, liquid metal is designed to on-demand localize at the AlO-polymer and AlO-filler interface regions, breaking rheological challenges for lowering the BLT. Specifically, during the sandwiched compression process, interfacial LM is just like the lubricant, dexterously promoting the relaxation of immobilized PDMS chains and helping fillers to flow through mitigating the internal friction between AlO and adjacent filler. As a result, this TIM first time exhibits a boundary BLT (4.28 μm) that almost approaches the diameter of the maximum filler and performs an ultralow dry-contact of 4.05 mm K/W at 40 psi, outperforming most reported and commercial dry-contact TIMs. This study of the low-BLT direction is believed to point to a new path for future research on high-performance TIMs.

摘要

将触变聚合物复合材料直接用于面外热传输应用(即热界面材料,TIMs)的努力,因它们在夹层结构中的应用热阻()一般而受阻。与传统提高热导率的尝试不同,本研究提出了一种低键合线厚度(BLT)路径来减轻夹层热阻。以最常见的TIM,聚二甲基硅氧烷/氧化铝/氧化锌(PDMS/AlO/ZnO)为例,设计液态金属按需定位在AlO-聚合物和AlO-填料界面区域,突破了降低BLT的流变学挑战。具体而言,在夹层压缩过程中,界面液态金属就像润滑剂一样,巧妙地促进固定的PDMS链的松弛,并通过减轻AlO与相邻填料之间的内摩擦帮助填料流动。结果,这种TIM首次展现出接近最大填料直径的边界BLT(4.28μm),并在40psi下表现出4.05mm K/W的超低干接触热阻,优于大多数已报道的和商业干接触TIMs。这项关于低BLT方向的研究被认为为未来高性能TIMs的研究指明了一条新路径。

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