Phonon resonance effect and defect scattering in covalently bonded carbon nanotube networks

碳纳米管 材料科学 声子 热导率 各向异性 散射 声子散射 凝聚态物理 热的 消散 垂直的 纳米技术 放松(心理学) 共价键 复合材料 光学 化学 物理 心理学 社会心理学 几何学 数学 有机化学 气象学 热力学
作者
Xiguang Wu,Yajuan Cheng,Shaoming Huang,Shiyun Xiong
出处
期刊:Physical review applied [American Physical Society]
卷期号:22 (2)
标识
DOI:10.1103/physrevapplied.22.024038
摘要

Covalently bonded carbon nanotube (CNT) networks offer promising potential for heat-dissipation applications due to their low interfacial thermal resistivity between connected CNTs. In this work, the thermal-transport properties of covalently bonded CNT networks were simulated by molecular dynamics. It was found that the thermal conductivity (TC) of the networked CNTs is periodic dependent. Although the TCs are reduced compared to those of pristine CNTs, they are considerably larger than the values in thermal interface materials. The TC reduction with respect to the pristine CNTs primarily stems from defect scattering at junctions and resonant scattering generated by CNTs oriented perpendicular to the transport direction. The two mechanisms operate over different frequency ranges and collectively contribute to a reduction in both phonon group velocity and relaxation time across the entire frequency range. Moreover, we demonstrate that increasing the network period in a specific direction increases the TC along this direction, while reduces TC in the perpendicular direction due to intensified resonant coupling. Such directional-dependent TC variations with period facilitate the regulation of thermal-transport anisotropy within CNT networks. Overall, our findings elucidate the underlying phonon transport mechanisms in CNT networks and offer valuable insights into the design of thermal interface materials, thermal insulation materials, and materials with tailored thermal anisotropy. By leveraging the identified mechanisms, it becomes possible to develop CNT-based materials with enhanced heat-dissipation capabilities and engineered TC profiles.
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