Cui Liu, Feng Yanhui, Zhang Xinxin
School of Mechanical Engineering, University of Science and Technology Beijing, Beijing 100083, China.
Phys Chem Chem Phys. 2015 Nov 7;17(41):27520-6. doi: 10.1039/c5cp03984c.
Heat conduction in carbon nanopeapods (CNPs), i.e. carbon nanotubes (CNTs) filled with fullerene C60 molecules, is investigated using molecular dynamics simulations. The enhancement mechanisms of CNP thermal conductivity, compared with bare CNTs, are discussed via the local heat flux onto a single atom, the relative contributions of different phonon oscillation frequencies to thermal conductivity and the phonon vibrational density of states. The result shows that filled C60 can increase the CNT thermal conductivity by up to 9.6 times in the temperature range of 100-500 K. The constructive phonon mode couplings between the tube and C60 in a frequency range of 0-20 THz, especially in x-, y-direction transverse acoustic modes and the radial breath mode, are primarily responsible for the increment of thermal conductivity. In addition, filled C60 molecules in CNPs enhance the mass transfer contribution to the total heat flux. This contribution accounts for 22-58% in CNPs, much higher than 12% in CNTs. With the temperature going up, the phonon scattering increases and the contribution from mass transfer to total heat flux decreases. Therefore, the CNP thermal conductivity decreases with rising temperature. This study sheds lights on nanoscale thermal/phonon engineering by utilization of CNTs and C60.
利用分子动力学模拟研究了碳纳米豆荚(CNPs)中的热传导,即填充有富勒烯C60分子的碳纳米管(CNTs)。通过单个原子上的局部热通量、不同声子振荡频率对热导率的相对贡献以及声子振动态密度,讨论了与裸碳纳米管相比,碳纳米豆荚热导率的增强机制。结果表明,在100-500K的温度范围内,填充的C60可使碳纳米管的热导率提高9.6倍。在0-20THz的频率范围内,尤其是在x、y方向的横向声学模式和径向呼吸模式中,管与C60之间的建设性声子模式耦合是热导率增加的主要原因。此外,碳纳米豆荚中填充的C60分子增强了质量传递对总热通量的贡献。这种贡献在碳纳米豆荚中占22%-58%,远高于碳纳米管中的12%。随着温度升高,声子散射增加,质量传递对总热通量的贡献降低。因此,碳纳米豆荚的热导率随温度升高而降低。这项研究通过利用碳纳米管和C60为纳米级热/声子工程提供了思路。