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Phonon localization in heat conduction

机译:声子在导热中的局限性

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摘要

Nondiffusive phonon thermal transport, extensively observed in nanostructures, has largely been attributed to classical size effects, ignoring the wave nature of phonons. We report localization behavior in phonon heat conduction due to multiple scattering and interference events of broadband phonons, by measuring the thermal conductivities of GaAs/AlAs superlattices with ErAs nanodots randomly distributed at the interfaces. With an increasing number of superlattice periods, the measured thermal conductivities near room temperature increased and eventually saturated, indicating a transition from ballistic to diffusive transport. In contrast, at cryogenic temperatures the thermal conductivities first increased but then decreased, signaling phonon wave localization, as supported by atomistic Greenșs function simulations. The discovery of phonon localization suggests a new path forward for engineering phonon thermal transport.
机译:在纳米结构中广泛观察到的非扩散声子热传递,很大程度上归因于经典的尺寸效应,而忽略了声子的波性质。我们通过测量GaAs / AlAs超晶格的热导率以及在界面处随机分布的ErAs纳米点,报告了由于宽带声子的多次散射和干扰事件而在声子导热中的局域行为。随着超晶格周期数量的增加,在室温附近测得的热导率增加并最终达到饱和,表明从弹道迁移到扩散迁移。相反,在低温下,热导率首先增加,然后降低,这表明了声子格林定律模拟所支持的声子波定位。声子本地化的发现为工程声子热传递提供了一条新的途径。

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