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DIELECTRIC NANOCOMPOSITE LAYERING CONFIGURATIONS FOR THERMALCONDUCTIVITY REDUCTION

机译:降低导热系数的介电纳米复合层构型

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Thermal transport in crystals is governed by dynamic phenomena that take place at the atomic scale, namely phonon dispersion and scattering. A growing understanding of these mechanisms, coupled with increasingly capable nanofabrication and characterization technologies, provide a not-too-distant opportunity for designing a new class of materials with tailored thermal characteristics such as thermal conductivity, among other physical characteristics. Focusing on layered nanocomposites, also known as superlattices, modeled using the Lennard-Jones potential as a starting platform, we examine the effects of layering topology on the bulk property of thermal conductivity. We use molecular dynamics simulations to examine the link between structure and property; and employ ideas from phononic crystal design to investigate the potential of realizing dielectric crystals with exceedingly low thermal conductivities. This work potentially targets a range of applications such as thermal insulators for space applications and thermoelectrics for energy harvesting.
机译:晶体中的热传输受原子尺度上发生的动态现象控制,即声子扩散和散射。对这些机制的日益了解,再加上越来越强大的纳米制造和表征技术,为设计具有定制的热特性(例如导热系数)以及其他物理特性的新型材料提供了一个不太遥远的机会。着眼于使用Lennard-Jones势作为起始平台建模的层状纳米复合材料,也称为超晶格,我们研究了层状拓扑对导热系数整体性能的影响。我们使用分子动力学模拟来检查结构和性质之间的联系;并运用声子晶体设计的思想来研究实现导热率极低的介电晶体的潜力。这项工作的潜在目标是广泛的应用,例如用于空间应用的绝热材料和用于能量收集的热电材料。

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