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Near-field radiative thermal transfer between a nanostructured periodic material and a planar substrate

机译:纳米结构周期性材料与平面基板之间的近场辐射热传递

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摘要

This paper provides a method based on rigorous coupled wave analysis for the calculation of the radiative thermal conductance between a layer that is patterned with arbitrary, periodically repeating features and a planar substrate. This method is applied to study the transfer from an array of beams with a rectangular cross section. The impact of the structure size and spacing on the thermal conductance are investigated. These calculations are compared to an effective medium theory, which becomes increasingly accurate as the structure sizes fall well below the relevant resonance wavelengths of materials and structures. Moreover, comparisons are made with a modified proximity approximation and the far-field approximation, which become valid for small and large spacings, respectively. Results show that new levels of control over the magnitude and spectral contributions to thermal conductance can be achieved with corrugated structures relative to planar ones. Specifically, we show for SiC arrays with rectangular cross sections and with the same filling fraction, that the use of a smaller periodicity leads to a lowered far-field thermal transfer and an increased near-field thermal transfer.
机译:本文提供了一种基于严格耦合波分析的方法,用于计算在图案上具有任意周期性重复特征的层与平面基板之间的辐射热导。该方法用于研究具有矩形横截面的光束阵列的传输。研究了结构尺寸和间距对热导率的影响。这些计算与有效的介质理论进行了比较,该理论随着结构尺寸大大低于材料和结构的相关共振波长而变得越来越准确。此外,使用改进的接近近似和远场近似进行比较,这两种修正分别对小间距和大间距有效。结果表明,相对于平面结构,波纹结构可以实现对导热系数的大小和光谱控制的新控制。具体而言,对于具有矩形横截面和相同填充率的SiC阵列,我们显示出使用较小的周期性会导致降低的远场热传递和增加的近场热传递。

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