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用于热管理应用的垂直排列碳纳米管束的纳米级热输运

Nanoscale Heat Transport of Vertically Aligned Carbon Nanotube Bundles for Thermal Management Applications.

作者信息

Spièce Jean, Lulla Kunal, de Crombrugghe de Picquendaele Pauline, Divay Laurent, Bezencenet Odile, Hackens Benoit, Gehring Pascal, Robson Alex J, Evangeli Charalambos, Kolosov Oleg V

机构信息

IMCN/NAPS, UCLouvain, B-1348 Louvain-la-Neuve, Belgium.

Physics Department, Lancaster University, LA1 4YB Lancaster, U.K.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 28;16(34):45671-45677. doi: 10.1021/acsami.4c07913. Epub 2024 Aug 13.

Abstract

Electronic devices continue to shrink in size while increasing in performance, making excess heat dissipation challenging. Traditional thermal interface materials (TIMs) such as thermal grease and pads face limitations in thermal conductivity and stability, particularly as devices scale down. Carbon nanotubes (CNTs) have emerged as promising candidates for TIMs because of their exceptional thermal conductivity and mechanical properties. However, the thermal conductivity of CNT films decreases when integrated into devices due to defects and bundling effects. This study employs a novel cross-sectional approach combining high-vacuum scanning thermal microscopy (SThM) with beam-exit cross-sectional polishing (BEXP) to investigate the nanoscale morphology and thermal properties of vertically aligned CNT bundles at low and room temperatures. Using appropriate thermal transport models, we extracted effective thermal conductivities of the vertically aligned nanotubes and obtained 4 W m K at 200 K and 37 W m K at 300 K. Additionally, non-negligible lateral thermal conductance between CNT bundles suggests more complex heat transfer mechanisms in these structures. These findings provide unique insights into nanoscale thermal transport in CNT bundles, which is crucial for optimizing novel thermal management strategies.

摘要

电子设备在尺寸不断缩小的同时性能却在提升,这使得散热成为一项挑战。传统的热界面材料(TIMs),如导热膏和散热垫,在热导率和稳定性方面存在局限性,尤其是随着设备尺寸的缩小。碳纳米管(CNTs)因其卓越的热导率和机械性能,已成为热界面材料的有前途的候选材料。然而,由于缺陷和聚集效应,碳纳米管薄膜在集成到设备中时热导率会降低。本研究采用一种新颖的横截面方法,将高真空扫描热显微镜(SThM)与束流出口横截面抛光(BEXP)相结合,以研究垂直排列的碳纳米管束在低温和室温下的纳米级形态和热性能。使用适当的热传输模型,我们提取了垂直排列的纳米管的有效热导率,在200 K时为4 W m K,在300 K时为37 W m K。此外,碳纳米管束之间不可忽略的横向热导率表明这些结构中的热传递机制更为复杂。这些发现为碳纳米管束中的纳米级热传输提供了独特的见解,这对于优化新型热管理策略至关重要。

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