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通过使用直接生长在氮化铝(AlN)上的碳纳米管(CNT)来提高CNT/AlN/硅橡胶复合材料的热导率,以实现降低填料填充率。

Enhancing the Thermal Conductivity of CNT/AlN/Silicone Rubber Composites by Using CNTs Directly Grown on AlN to Achieve a Reduced Filler Filling Ratio.

作者信息

Matsumoto Naoyuki, Futaba Don N, Yamada Takeo, Kokubo Ken

机构信息

Nano Carbon Device Research Center, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba Central 5, 1-1-1 Higashi, Tsukuba 305-8565, Ibaraki, Japan.

出版信息

Nanomaterials (Basel). 2024 Mar 15;14(6):528. doi: 10.3390/nano14060528.

Abstract

Achieving the thermal conductivity required for efficient heat management in semiconductors and other devices requires the integration of thermally conductive ceramic fillers at concentrations of 60 vol% or higher. However, an increased filler content often negatively affects the mechanical properties of the composite matrix, limiting its practical applicability. To address this issue, in this paper, we present a new strategy to reduce the required ceramic filler content: the use of a thermally conductive ceramic composite filler with carbon nanotubes (CNTs) grown on aluminum nitride (AlN). We combined catalyst coating technology with vacuum filtration to ensure that the catalyst was uniformly applied to micrometer-sized AlN particles, followed by the efficient and uniform synthesis of CNTs using a water-assisted process in a vertical furnace. By carefully controlling the number of vacuum filtration cycles and the growth time of the CNTs, we achieved precise control over the number and length of the CNT layers, thereby adjusting the properties of the composite to the intended specifications. When AlN/CNT hybrid fillers are incorporated into silicone rubber, while maintaining the mechanical properties of rubber, the thermal diffusivity achieved at reduced filler levels exceeds that of composites using AlN-only or simultaneous AlN and CNTs formulations. This demonstrates the critical influence of CNTs on AlN surfaces. Our study represents a significant advancement in the design of thermally conductive materials, with potential implications for a wide range of applications.

摘要

要实现半导体及其他器件高效热管理所需的热导率,需要集成浓度为60体积%或更高的导热陶瓷填料。然而,填料含量的增加往往会对复合基体的机械性能产生负面影响,限制其实际应用。为了解决这个问题,在本文中,我们提出了一种新策略来降低所需的陶瓷填料含量:使用一种在氮化铝(AlN)上生长有碳纳米管(CNT)的导热陶瓷复合填料。我们将催化剂涂层技术与真空过滤相结合,以确保催化剂均匀地应用于微米级的AlN颗粒上,随后在竖式炉中采用水辅助工艺高效且均匀地合成CNT。通过仔细控制真空过滤循环次数和CNT的生长时间,我们实现了对CNT层数和长度的精确控制,从而将复合材料的性能调整到预期规格。当将AlN/CNT混合填料加入硅橡胶中时,在保持橡胶机械性能的同时,在较低填料含量下实现的热扩散率超过了仅使用AlN或同时使用AlN和CNT配方的复合材料。这证明了CNT对AlN表面的关键影响。我们的研究代表了导热材料设计方面的一项重大进展,对广泛的应用具有潜在意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20b1/10974482/3ffab903e617/nanomaterials-14-00528-g001.jpg

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