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Molecular Dynamics Study of Phonon Screening in Graphene

机译:石墨烯中声子筛选的分子动力学研究

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Phonon interaction with electrons or phonons or with structural defects result in a phonon mode conversion. The mode conversion is governed by the frequency wave-vector dispersion relation. The control over phonon mode or the screening of phonon in graphene is studied using the propagation of amplitude modulated phonon wave-packet. Control over phonon properties like frequency and velocity opens up several wave guiding, energy transport and thermo-electric applications of graphene. One way to achieve this control is with the introduction of nano-structured scattering in the phonon path. Atomistic model of thermal energy transport is developed which is applicable to devices consisting of source, channel and drain parts. Longitudinal acoustic phonon mode is excited from one end of the device. Molecular dynamics based time integration is adopted for the propagation of excited phonon to the other end of the device. The amount of energy transfer is estimated from the relative change of kinetic energy. Increase in the phonon frequency decreases the kinetic energy transmission linearly in the frequency band of interest. Further reduction in transmission is observed with the tuning of channel height of the device by increasing the boundary scattering. Phonon mode selective transmission control have potential application in thermal insulation or thermo-electric application or photo-thermal amplification.
机译:声子与电子或声子或结构缺陷的相互作用导致声子模式转换。模式转换受频率波矢量色散关系的支配。利用调幅声子波包的传播研究了声子模式的控制或石墨烯中声子的屏蔽。对声子特性(如频率和速度)的控制打开了石墨烯的几种波导,能量传输和热电应用领域。实现此控制的一种方法是在声子路径中引入纳米结构的散射。建立了热能传输的原子模型,该模型适用于由源,通道和漏极部分组成的设备。纵向声子声子模式从设备的一端被激发。采用基于分子动力学的时间积分将激发的声子传播到设备的另一端。能量转移的量是根据动能的相对变化估算的。声子频率的增加使感兴趣的频带中的动能传递线性降低。通过增加边界散射,随着装置的沟道高度的调整,观察到传输的进一步降低。声子模式选择性传输控制在热绝缘或热电应用或光热放大中具有潜在的应用。

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