Alan G MacDiarmid NanoTech Institute, University of Texas at Dallas, Richardson, TX 75083, USA.
Nanotechnology. 2010 Jan 22;21(3):035709. doi: 10.1088/0957-4484/21/3/035709.
The extremely high thermal conductivity of individual carbon nanotubes, predicted theoretically and observed experimentally, has not yet been achieved for large nanotube assemblies. Resistances at tube-tube interconnections and tube-electrode interfaces have been considered the main obstacles for effective electronic and heat transport. Here we show that, even for infinitely long and perfect nanotubes with well-designed tube-electrode interfaces, excessive radial heat radiation from nanotube surfaces and quenching of phonon modes in large bundles are additional processes that substantially reduce thermal transport along nanotubes. Equivalent circuit simulations and an experimental self-heating 3omega technique were used to determine the peculiarities of anisotropic heat flow and thermal conductivity of single MWNTs, bundled MWNTs and aligned, free-standing MWNT sheets. The thermal conductivity of individual MWNTs grown by chemical vapor deposition and normalized to the density of graphite is much lower (kappa(MWNT) = 600 +/- 100 W m(-1) K(-1)) than theoretically predicted. Coupling within MWNT bundles decreases this thermal conductivity to 150 W m(-1) K(-1). Further decrease of the effective thermal conductivity in MWNT sheets to 50 W m(-1) K(-1) comes from tube-tube interconnections and sheet imperfections like dangling fiber ends, loops and misalignment of nanotubes. Optimal structures for enhancing thermal conductivity are discussed.
单个碳纳米管的极高热导率在理论上被预测到,并在实验中观察到,但在大的纳米管组件中尚未实现。管-管连接和管-电极界面的电阻被认为是有效电子和热传输的主要障碍。在这里,我们表明,即使对于具有设计良好的管-电极界面的无限长和完美的纳米管,来自纳米管表面的过度径向热辐射和大束中的声子模式猝灭也是另外两个过程,它们大大降低了纳米管中的热传输。等效电路模拟和实验自加热 3omega 技术用于确定单根 MWNTs、捆绑 MWNTs 和定向、独立 MWNT 片的各向异性热流和热导率的特性。通过化学气相沉积生长的单根 MWNTs 的热导率归一化到石墨密度后要低得多(kappa(MWNT)= 600 +/- 100 W m(-1) K(-1)),远低于理论预测值。MWNT 束内的耦合将这种热导率降低到 150 W m(-1) K(-1)。MWNT 片中有效热导率进一步降低到 50 W m(-1) K(-1)是由于管-管连接和片材缺陷,如悬空纤维末端、环路和纳米管的不对齐。讨论了增强热导率的最佳结构。