论文标题

近距离辐射传热之间的偶联材料与耦合的表面声子和等离子 - 孔子介导的材料

Near-field radiative heat transfer between dissimilar materials mediated by coupled surface phonon- and plasmon-polaritons

论文作者

Tang, Lei, DeSutter, John, Francoeur, Mathieu

论文摘要

在红外支撑表面极化物质之间的近场辐射传热(NFRHT)对于诸如光子热整流和近场嗜热伏尔托抗物等应用至关重要。在这里,我们测量了由6H-SIC和掺杂的Si制成的毫米尺寸表面之间的NFRHT,分别支持表面声子 - 果龙(SPHP)和在红外线的表面等离子体 - 核酸杆菌(SPP),并通过Sio2 Nanapillars维持150 nm-thick thick thick thick vacuuum间隔间隔。为了进行比较,在两个掺杂的Si表面之间也进行了测量。测得的辐射通量与基于波动电动力学的理论预测非常吻合。对于SIC-SI样品,获得了〜8.2的磁通量的增强,这要小于SI-SI样品(〜12.5)的增强,因为SIC和SI光线的光谱不匹配,以及SPHP和SPP和SPP共振。然而,由于SIC的损失低于SI的损失和SPHP-SPP耦合较弱,SIC-SI样品的近场增强表现出更为明显的单色行为,其谐振磁通磁通量是SI-SI样品的谐振通量约5倍。这项工作表明,可以通过表面极化偶联来调节NFRHT,并将加速能量转换和热管理设备的发展,利用相似材料之间的热辐射的近场作用。

Near-field radiative heat transfer (NFRHT) between dissimilar materials supporting surface polaritons in the infrared is of critical importance for applications such as photonic thermal rectification and near-field thermophotovoltaics. Here, we measure NFRHT between millimetersize surfaces made of 6H-SiC and doped Si, respectively supporting surface phonon-polaritons (SPhPs) and surface plasmon-polaritons (SPPs) in the infrared, separated by a 150-nm-thick vacuum gap spacing maintained via SiO2 nanopillars. For purpose of comparison, measurements are also performed between two doped Si surfaces. The measured radiative flux is in good agreement with theoretical predictions based on fluctuational electrodynamics. A flux enhancement beyond the blackbody limit of ~ 8.2 is obtained for the SiC-Si sample, which is smaller than the enhancement for the Si-Si sample (~ 12.5) owing to the spectral mismatch of the SiC and Si light lines, and SPhP and SPP resonances. However, due to lower losses in SiC than Si and weaker SPhP-SPP coupling than SPP coupling, the near-field enhancement for the SiC-Si sample exhibits a more pronounced monochromatic behavior with a resonant flux that is ~ 5 times larger than the resonant flux for the Si-Si sample. This work demonstrates that it is possible to modulate NFRHT via surface polariton coupling, and will accelerate the development of energy conversion and thermal management devices capitalizing on the near-field effects of thermal radiation between dissimilar materials.

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