Wang Hongying, Cheng Yajuan, Fan Zheyong, Guo Yangyu, Zhang Zhongwei, Bescond Marc, Nomura Massahiro, Ala-Nissila Tapio, Volz Sebastian, Xiong Shiyun
Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Soochow University, 199 Ren'ai Road, Suzhou, 215123, Jiangsu, P. R. China.
Nanoscale. 2021 Jun 14;13(22):10010-10015. doi: 10.1039/d1nr01679b. Epub 2021 May 26.
Nanophononic metamaterials have broad applications in fields such as heat management, thermoelectric energy conversion, and nanoelectronics. Phonon resonance in pillared low-dimensional structures has been suggested to be a feasible approach to reduce thermal conductivity (TC). In this work, we study the effects of imperfections in pillared nanostructures based on graphene nanoribbons (GNR), using classical molecular dynamics simulations and harmonic lattice dynamics. The TC of perfect pillared GNR is only about 13% of that of pristine GNR due to the strong phonon resonant hybridization in pillared GNR. However, introducing imperfections such as vacancy defects and mass mismatch between the pillars and the base material, and alloy disorder in the pillars, can weaken the resonant hybridization and abnormally increase the TC. We show that both vacancy defects and mass mismatch can reduce the penetration of the resonant modes from the pillars into the base material, while the alloy disorder in the pillars can scatter the phonons inside them, which turns regular resonance into a random one with weaker hybridization. Our work provides useful insight into the phonon resonance mechanisms in experimentally relevant low dimensional nanostructures containing various imperfections.
纳米声子超材料在热管理、热电能量转换和纳米电子学等领域有着广泛的应用。有人提出,柱状低维结构中的声子共振是降低热导率(TC)的一种可行方法。在这项工作中,我们使用经典分子动力学模拟和谐波晶格动力学,研究了基于石墨烯纳米带(GNR)的柱状纳米结构中缺陷的影响。由于柱状GNR中强烈的声子共振杂化,完美柱状GNR的热导率仅约为原始GNR的13%。然而,引入诸如空位缺陷、柱体与基体材料之间的质量不匹配以及柱体中的合金无序等缺陷,会削弱共振杂化并异常增加热导率。我们表明,空位缺陷和质量不匹配都可以减少共振模式从柱体向基体材料的渗透,而柱体中的合金无序会散射其中的声子,这将规则共振转变为杂化较弱的随机共振。我们的工作为包含各种缺陷的实验相关低维纳米结构中的声子共振机制提供了有用的见解。