论文标题

两条音子干扰共振通过嵌入的纳米颗粒阵列诱导硅晶体矩阵中的停止带

Two-Path Phonon-Interference Resonance Induces a Stop Band in Silicon Crystal Matrix by Embedded Nanoparticles Array

论文作者

Hu, Shiqian, Feng, Lei, Cheng, Shao, Kosevich, Yuriy A., Shiomi, Junichiro

论文摘要

在这项工作中,我们通过执行原子绿色的功能计算和带有晶晶石硅晶体属晶层纳米颗粒阵列的系统的波包分子动力学模拟来报告一种新的停止波段形成机制。当仅嵌入单个纳米颗粒时,通过两种不同的声子波路径之间的破坏性干扰引起的局部共振会导致几种尖锐而显着的透射率下降。另一方面,当嵌入式纳米颗粒的数量进一步增加到十个时,由于两路共振bragg bragg样声子干扰,形成具有完整声子反射的停止频带。波数据包模拟进一步发现了停止频带源自嵌入式纳米颗粒处的集体声子共鸣。与传统的停止式形成机制相比,是单路bragg的反射,共振机制在不需要嵌入式纳米颗粒阵列中的严格周期性方面具有重要优势。我们还证明,停止频带可以显着抑制低频状态下的导热电导。我们的工作提供了强大的,可扩展的。并易于调节的停止频段形成机制。这为与语音相关的热控制打开了新的自由度。

In this work, we report a new stop-band formation mechanism by performing the atomistic Green's function calculation and the wave-packet molecular dynamics simulation for a system with germanium-nanoparticle array embedded in a crystalline silicon matrix. When only a single nanoparticle is embedded, the local resonance, induced through destructive interference between two different phonon wave paths, gives rise to several sharp and significant transmittance dips. On the other hand, when the number of embedded nanoparticles further increases to ten, a stop band with complete phonon reflection is formed due to the two-path resonance Bragg-like phonon interference. The wave packet simulations further uncover that the stop band originates from the collective phonon resonances at the embedded nanoparticles. Compared with the traditional stop-band formation mechanism that is the single-path Bragg reflection, the resonance mechanism has a significant advantage in not requiring the strict periodicity in the embedded nanoparticles array. We also demonstrate that the stop band can significantly suppress thermal conductance in the low-frequency regime. Our work provides a robust, scalable. and easily modulable stop-band formation mechanism. which opens a new degree of freedom for phononics-related heat control.

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