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Ultralow Lattice Thermal Conductivity of the Random Multilayer Structure with Lattice Imperfections

机译:具有晶格缺陷的随机多层结构的超低晶格导热率

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摘要

Randomizing the layer thickness of superlattices (SL) can lead to localization of coherent phonons and thereby reduces the lattice thermal conductivity κ l. In this work, we propose strategies that can suppress incoherent phonon transport in the above random multilayer (RML) structure to further reduce κ l. Molecular dynamics simulations are conducted to investigate phonon heat conduction in SLs and RMLs with lattice imperfections. We found that interfacial species mixing enhances thermal transport across single interfaces and few-period SLs through the phonon “bridge” mechanism, while it substantially reduces the κ l of many-period SLs by breaking the phonon coherence. This is a clear manifestation of the transition from incoherent-phonon-dominated to coherent-phonon-dominated heat conduction in SLs when the number of interface increases. In contrast, interfacial species mixing always increases the κ l of RMLs owing to the dominance of incoherent phonons. Moreover, we found that doping a binary RML with impurities can reduce κ l significantly, especially when the impurity atom has an atomic mass lower or higher than both of the two base elements. This work reveals the critical effect of lattice imperfections on thermal transport in SLs and RMLs, and provides a unique strategy to hierachically suppress coherent and incoherent phonon transport concurrently.
机译:将超晶格(SL)的层厚度随机化会导致相干声子的局域化,从而降低晶格导热系数κl。在这项工作中,我们提出了可以抑制上述随机多层(RML)结构中非相干声子传输的策略,以进一步减小κl。进行分子动力学模拟以研究具有晶格缺陷的SL和RML中的声子热传导。我们发现界面物质的混合通过声子“桥”机制增强了跨单个界面和少周期SL的热传输,同时通过破坏声子相干性大大降低了多周期SL的κl。这清楚地表明,当界面数量增加时,SL中从非相干声子占主导的热传导转变为相干声子占主导的热传导。相反,由于非相干声子的优势,界面物质的混合总是增加RML的κl。此外,我们发现用杂质掺杂二元RML可以显着降低κl,特别是当杂质原子的原子质量低于或高于两个基本元素时。这项工作揭示了晶格缺陷对SL和RML中热传递的关键影响,并提供了独特的策略来多层次地同时抑制相干和非相干声子的传输。

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