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Novel three-dimensional carbon nanotube networks as high performance thermal interface materials

机译:新型三维碳纳米管网络作为高性能热界面材料

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Vertically aligned carbon nanotube (VACNT) arrays are considered as promising thermal interface materials (TIMs) due to their superior out-of-plane thermal conductivities. However the air gaps between adjacent CNTs within the CNT array hinder the in-plane heat transfer, thus significantly degrading the thermal performance of VACNT-based TIMs. To improve the in-plane thermal conduction of VACNT arrays, we propose a novel three dimensional CNT (3D CNT) network structure, where VACNTs are crosslinked by randomly-oriented secondary CNTs. Three different catalyst preparation methods for the secondary CNT growth are compared in terms of their ability to produce a dense network of secondary CNTs. The 3D CNT network grown using the chemical impregnation method shows a denser network structure, and thus is chosen for further thermal characterization. The temperature fields of the corresponding 3D CNT network under different heating powers are recorded using a 15 mm-resolution infrared thermal imaging system. The in-plane thermal conductivity is then derived from these fields using numerical fitting with a 3D heat diffusion model. We find that the in-plane thermal conductivity of the 3D CNT network is 5.40 +/- 0.92 W/mK, at least 30 times higher than the thermal conductivity of the primary VACNT array used to grow the 3D CNT network. (c) 2018 Elsevier Ltd. All rights reserved.
机译:由于其优越的平面外导热率,垂直对准的碳纳米管(VACNT)阵列被认为是有前途的热界面材料(TIMS)。然而,CNT阵列内的相邻CNT之间的空气间隙阻碍了面内传热,从而显着降低了基于VACNT的TIM的热性能。为了改善VACNT阵列的面内热传导,我们提出了一种新的三维CNT(3D CNT)网络结构,其中通过随机取向的二级CNT交联。在其产生次级CNT的致密网络的能力方面比较了三种不同的催化剂制备方法的二级CNT生长。使用化学浸渍方法生长的3D CNT网络示出了更密集的网络结构,因此选择进一步热表征。使用15mm分辨率红外热成像系统记录相应的3D CNT网络在不同加热功率下的温度场。然后使用具有3D热扩散模型的数值拟合来源于平面的导热率。我们发现3D CNT网络的面内导热率为5.40 +/- 0.92 W / MK,比用于种植3D CNT网络的主VACNT阵列的导热率高,至少30倍。 (c)2018年elestvier有限公司保留所有权利。

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