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Thermal conductivity and air-mediated losses in periodic porous silicon membranes at high temperatures

机译:高温下周期性多孔硅膜的热导率和空气介导的损失

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摘要

Heat conduction in silicon can be effectively engineered by means of sub-micrometre porous thin free-standing membranes. Tunable thermal properties make these structures good candidates for integrated heat management units such as waste heat recovery, rectification or efficient heat dissipation. However, possible applications require detailed thermal characterisation at high temperatures which, up to now, has been an experimental challenge. In this work we use the contactless two-laser Raman thermometry to study heat dissipation in periodic porous membranes at high temperatures via lattice conduction and air-mediated losses. We find the reduction of the thermal conductivity and its temperature dependence closely correlated with the structure feature size. On the basis of two-phonon Raman spectra, we attribute this behaviour to diffuse (incoherent) phonon-boundary scattering. Furthermore, we investigate and quantify the heat dissipation via natural air-mediated cooling, which can be tuned by engineering the porosity.
机译:硅中的导热可以通过亚微米级多孔薄自支撑膜有效地设计。可调节的热性能使这些结构成为集成热管理单元(例如废热回收,精馏或有效散热)的良好候选者。但是,可能的应用需要在高温下进行详细的热特性分析,到目前为止,这一直是一项实验挑战。在这项工作中,我们使用非接触式两激光拉曼测温法研究了高温下周期性多孔膜通过晶格传导和空气介导的损耗所产生的热量。我们发现热导率的降低及其对温度的依赖性与结构特征尺寸密切相关。基于两声子拉曼光谱,我们将此行为归因于扩散(非相干)声子边界散射。此外,我们研究和量化了通过自然空气介导的冷却所产生的热量,可以通过设计孔隙率来进行调节。

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