Department of Mechanical and Aerospace Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong.
Nanoscale. 2017 Nov 23;9(45):18022-18031. doi: 10.1039/c7nr06216h.
Using the first-principles-based anharmonic lattice dynamics, we calculate the thermal conductivities (κ) of both bulk and single-chain polyethylene (PE) and characterize the mode-wise phonon transport and scattering channels. A significantly higher room-temperature axial thermal conductivity in single-chain PE (1400 W m K) is observed compared to bulk PE crystals (237 W m K). The reduction of scattering phase space caused by the diminished inter-chain van der Waals interactions explains the much larger κ in single-chain PE. Different from many previous studies, the thermal conductivity of single-chain PE is predicted to converge at a chain length of ∼1 mm at 300 K. The convergence is explained by the indirect thermal resistance from momentum-conserving scatterings of long-wavelength phonons. It is also found that longitudinal phonon modes dominate the thermal transport in PE chains, while transverse phonon branches with quadratic dispersions contribute little to κ due to their vanishing group velocities and limited lifetimes in the long wavelength limit. The predicted high κ of bulk crystalline and single-chain PE show great potential for use of polymers in thermal management, and the unveiled phonon transport mechanisms offer guides for their molecule-level design.
我们使用基于第一性原理的非谐晶格动力学,计算了块状和单链聚乙烯(PE)的热导率(κ),并对模式相关的声子输运和散射通道进行了特征化分析。与块状 PE 晶体(237 W m K)相比,单链 PE 在室温下的轴向热导率(1400 W m K)显著提高。由于链间范德华相互作用的减小导致散射相空间的减少,解释了单链 PE 中较大的 κ 值。与许多先前的研究不同,我们预测单链 PE 的热导率在 300 K 时将在链长约 1 毫米处收敛。这种收敛是由长波长声子的动量守恒散射引起的间接热阻解释的。我们还发现,纵向声子模式主导了 PE 链中的热输运,而具有二次色散的横向声子分支由于其在长波长极限下的群速度为零和有限的寿命,对 κ 的贡献很小。预测的块状晶体和单链 PE 的高热导率表明聚合物在热管理中的应用具有巨大的潜力,而揭示的声子输运机制为其分子水平的设计提供了指导。