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首页> 外文期刊>Advanced Functional Materials >A Pyrenylpropyl Phosphonic Acid Surface Modifier for Mitigating the Thermal Resistance of Carbon Nanotube Contacts
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A Pyrenylpropyl Phosphonic Acid Surface Modifier for Mitigating the Thermal Resistance of Carbon Nanotube Contacts

机译:一种用于减轻碳纳米管触点热阻的苯丙基膦酸表面改性剂

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摘要

Efforts to utilize the high intrinsic thermal conductivity of carbon nanotubes (CNTs) for thermal transport applications, namely for thermal interface materials (TIMs), have been encumbered by the presence of high thermal contact resistances between the CNTs and connecting materials. Here, a pyrenylpro-pyl-phosphonic acid surface modifier is synthesized and applied in a straight forward and repeatable approach to reduce the thermal contact resistance between CNTs and metal oxide surfaces. When used to bond nominally vertically aligned multi-walled CNT forests to Cu oxide surfaces, the modifier facilitates a roughly 9-fold reduction in the thermal contact resistance over dry contact, enabling CNT-based TIMs with thermal resistances of 4.6 ± 0.5 mm~2 K W~(-1), comparable to conventional metallic solders. Additional experimental characterization of the modifier suggests that it may be used to reduce the electrical resistance of CNT-metal oxide contacts by similar orders of magnitude.
机译:在碳纳米管(CNT)和连接材料之间存在高的热接触电阻已经阻碍了将碳纳米管(CNT)的高固有热导率用于热传输应用,即用于热界面材料(TIM)。在此,合成并以简单直接且可重复的方式应用pro基前丙基膦酸表面改性剂,以降低CNT与金属氧化物表面之间的热接触电阻。当用于将名义上垂直对齐的多壁CNT林粘结到Cu氧化物表面上时,该改性剂可将热接触电阻降低至比干接触低约9倍,从而使CNT基TIM的热阻达到4.6±0.5 mm〜2 KW〜(-1),可与传统金属焊料媲美。改性剂的其他实验特性表明,该改性剂可用于将CNT-金属氧化物触点的电阻降低相似的数量级。

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  • 来源
    《Advanced Functional Materials 》 |2014年第4期| 465-471| 共7页
  • 作者单位

    G. W. Woodruff, School of Mechanical Engineering Georgia Institute of Technology Atlanta, GA, 30332-0001, USA;

    School of Chemistry and Biochemistry Georgia Institute of Technology Atlanta, GA, 30332-0001, USA;

    School of Chemistry and Biochemistry Georgia Institute of Technology Atlanta, GA, 30332-0001, USA,School of Materials Science and Engineering Atlanta, GA, 30332-0001, USA;

    G. W. Woodruff, School of Mechanical Engineering Georgia Institute of Technology Atlanta, GA, 30332-0001, USA,School of Materials Science and Engineering Atlanta, GA, 30332-0001, USA;

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