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Chemically enhanced carbon nanotubes based thermal interface materials

机译:化学增强的碳纳米管基热界面材料

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With progress in microelectronics the component density on a device increases drastically. As a consequence the power density reaches levels that challenge device reliability. New heat dissipation strategies are needed to efficiently drain heat. Thermal Interface Materials (TIMs) are usually used to transfer heat across interfaces, for example between a device and its packaging. Vertically Aligned Carbon Nanotubes (VACNTs) can be used to play this role. Indeed, carbon nanotubes are among the best thermal conductors (~3.000 W/mK) and in the form of VACNT mats, show interesting mechanical properties. On one side, VACNTs are in contact with their growth substrate and there is a low thermal resistance. On the other side, good contact must be created between the opposite substrate and the VACNTs in order to decrease the contact thermal resistance. A thin-film deposition of an amorphous material can be used to play this role. This paper reports a chemically enhanced carbon nanotube based TIM with creation of chemical bonds between the polymer and VACNTs. We show that these covalent bonds enhance the thermal transfer from VACNTs to a copper substrate and can dramatically decrease local resistances. Implementation processes and thermal characterizations of TIMs are studied and reported.
机译:随着微电子学的进步,器件上的组件密度急剧增加。结果,功率密度达到了挑战设备可靠性的水平。需要新的散热策略以有效地散热。热界面材料(TIM)通常用于在界面之间传递热量,例如在设备及其包装之间传递热量。垂直排列的碳纳米管(VACNTs)可以发挥这种作用。的确,碳纳米管是最好的导热体(〜3.000 W / mK),并且以VACNT毡的形式表现出有趣的机械性能。一方面,VACNT与它们的生长基质接触,并且热阻低。另一方面,必须在相对的基板和VACNT之间建立良好的接触,以减小接触热阻。非晶态材料的薄膜沉积可用于发挥这一作用。本文报道了一种化学增强的基于碳纳米管的TIM,在聚合物和VACNT之间建立了化学键。我们表明,这些共价键增强了从VACNTs到铜基板的热传递,并且可以显着降低局部电阻。研究并报告了TIM的实现过程和热特性。

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