首页> 外文OA文献 >Phase-Space Properties of Two-Dimensional Elastic Phononic Crystals and Anharmonic Effects in Nano-Phononic Crystals
【2h】

Phase-Space Properties of Two-Dimensional Elastic Phononic Crystals and Anharmonic Effects in Nano-Phononic Crystals

机译:二维弹性声子晶体的相空间特性及纳米声子晶体中的非谐效应

摘要

This dissertation contains research directed at investigating the behavior and properties of a class of composite materials known as phononic crystals. Two categories of phononic crystals are explicitly investigated: (I) elastic phononic crystals and (II) nano-scale phononic crystals. For elastic phononic crystals, attention is directed at two-dimensional structures. Two specific structures are evaluated (1) a two-dimensional configuration consisting of a square array of cylindrical Polyvinylchloride inclusions in air and (2) a two-dimensional configuration consisting of a square array of steel cylindrical inclusions in epoxy. For the first configuration, a theoretical model is developed to ascertain the necessary band structure and equi-frequency contour features for the realization of phase control between propagating acoustic waves. In contrasting this phononic crystal with a reference system, it is shown that phononic crystals with equifrequency contours showing non-collinear wave and group velocity vectors are ideal systems for controlling the phase between propagating acoustic waves. For the second configuration, it is demonstrated that multiple functions can be realized of a solid/solid phononic crystal. The epoxy/steel phononic crystal is shown to behave as (1) an acoustic wave collimator, (2) a defect-less wave guide, (3) a directional source for elastic waves, (4) an acoustic beam splitter, (5) a phase-control device and (6) a k-space multiplexer. To transition between macro-scale systems (elastic phononic crystals) and nano-scale systems (nano-phononic crystals), a toy model of a one-dimensional chain of masses connected with non-linear, anharmonic springs is utilized. The implementation of this model introduces critical ideas unique to nano-scale systems, particularly the concept of phonon mode lifetime. The nano-scale phononic crystal of interest is a graphene sheet with periodically spaced holes in a triangular array. It is found through equilibrium molecular dynamics simulation techniques, that phonon-boundary collision effects and coherent phononic effects (band-folding) are two competing scattering mechanisms responsible for the reduction of acoustic and optical phonon lifetimes. Conclusions drawn about the lifetime of thermal phonons in phononic crystal patterned graphene are linked with the anharmonic, one-dimensional crystal model.
机译:本论文包括旨在研究一类称为声子晶体的复合材料的行为和性能的研究。明确研究了两类声子晶体:(I)弹性声子晶体和(II)纳米级声子晶体。对于弹性声子晶体,注意力集中在二维结构上。评价了两个特定的结构(1)由空气中的圆柱形聚氯乙烯夹杂物的正方形阵列组成的二维构型,以及(2)由环氧钢中的圆柱形圆柱形夹杂物的正方形阵列组成的二维构型。对于第一种配置,开发了一个理论模型来确定实现传播声波之间的相位控制所需的频带结构和等频轮廓特征。将这种声子晶体与参考系统进行对比,结果表明具有等频率轮廓的声子晶体显示了非共线波和群速度矢量,是控制传播声波之间相位的理想系统。对于第二配置,证明了可以实现固体/固体声子晶体的多种功能。环氧/钢声子晶体表现为(1)声波准直仪,(2)无缺陷波导,(3)弹性波定向源,(4)声束分离器,(5)相位控制设备和(6)k空间多路复用器。为了在宏观系统(弹性声子晶体)和纳米系统(纳米声子晶体)之间转换,使用了与非线性非谐弹簧连接的一维质量链的玩具模型。该模型的实现引入了纳米级系统独有的重要思想,特别是声子模式寿命的概念。感兴趣的纳米级声子晶体是具有三角形阵列中周期性间隔开的孔的石墨烯片。通过平衡分子动力学模拟技术发现,声子边界碰撞效应和相干声子效应(能带折叠)是造成声子和光子声子寿命减少的两种竞争性散射机制。关于声子晶体图案化石墨烯中热声子寿命的结论与非谐一维晶体模型有关。

著录项

  • 作者

    Swinteck Nichlas Z.;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

相似文献

  • 外文文献
  • 中文文献
  • 专利

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号