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Radiative heat transfer exceeding the blackbody limit between macroscale planar surfaces separated by a nanosize vacuum gap

机译:纳米级真空间隙分隔的宏观平面之间的辐射热传递超过黑体极限

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Using Rytov’s fluctuational electrodynamics framework, Polder and Van Hove predicted that radiative heat transfer between planar surfaces separated by a vacuum gap smaller than the thermal wavelength exceeds the blackbody limit due to tunnelling of evanescent modes. This finding has led to the conceptualization of systems capitalizing on evanescent modes such as thermophotovoltaic converters and thermal rectifiers. Their development is, however, limited by the lack of devices enabling radiative transfer between macroscale planar surfaces separated by a nanosize vacuum gap. Here we measure radiative heat transfer for large temperature differences (~120?K) using a custom-fabricated device in which the gap separating two 5 × 5?mm2 intrinsic silicon planar surfaces is modulated from 3,500 to 150?nm. A substantial enhancement over the blackbody limit by a factor of 8.4 is reported for a 150-nm-thick gap. Our device paves the way for the establishment of novel evanescent wave-based systems.
机译:利用Rytov的波动电动力学框架,Polder和Van Hove预测,由于by逝模的隧穿,被真空间隙(小于热波长)隔开的平面之间的辐射传热超过了黑体极限。这一发现导致了利用瞬态模式的系统的概念化,例如热光电转换器和热整流器。但是,由于缺乏能够在纳米级真空间隙隔开的宏观平面之间进行辐射传递的装置的限制,它们的发展受到了限制。在这里,我们使用定制设备测量大温差(〜120?K)时的辐射传热,该设备将两个5×5?mm 2 本征硅平面表面之间的间隙从3500调制为150?nm。对于150 nm的厚度间隙,据报道黑体极限显着提高了8.4倍。我们的设备为建立新型的基于e逝波的系统铺平了道路。

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