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用于增强近场辐射传热的纳米光子热交换器

Nanophotonic Heat Exchanger for Enhanced Near-Field Radiative Heat Transfer.

作者信息

Tsurimaki Yoichiro, Benzaouia Mohammed, Fan Shanhui

机构信息

Department of Electrical Engineering, Ginzton Laboratory, Stanford University, Stanford, California, 94305 United States.

出版信息

Nano Lett. 2024 Apr 17;24(15):4521-4527. doi: 10.1021/acs.nanolett.4c00506. Epub 2024 Apr 2.

Abstract

Increasing near-field radiative heat transfer between two bodies separated by a vacuum gap is crucial for enhancing the power density in radiative energy transport and conversion devices. However, the largest radiative heat transfer coefficient between two realistic materials at room temperature is limited to around 2000 W/(m·K) for a gap of 100 nm. Here, analogous to conventional plate-fin heat exchangers based on convection, we introduce the concept of a nanophotonic heat exchanger, which enhances near-field radiative heat transfer using two bodies with interpenetrating gratings. Our calculations, based on rigorous fluctuational electrodynamics, show that the radiative heat transfer coefficient between the bodies separated by a 100 nm gap can significantly exceed 2000 W/(m·K) by increasing the aspect ratios of the gratings. We develop a semianalytical heat transfer model that agrees well with the rigorous calculations for design optimization. Our work opens new opportunities for enhancing near-field radiative heat transfer between any materials.

摘要

增加被真空间隙隔开的两个物体之间的近场辐射热传递对于提高辐射能量传输和转换设备中的功率密度至关重要。然而,对于100纳米的间隙,室温下两种实际材料之间的最大辐射热传递系数限制在约2000瓦/(米·开尔文)左右。在此,类似于基于对流的传统板翅式热交换器,我们引入了纳米光子热交换器的概念,它使用具有互穿光栅的两个物体来增强近场辐射热传递。我们基于严格的波动电动力学进行的计算表明,通过增加光栅的纵横比,被100纳米间隙隔开的物体之间的辐射热传递系数可以显著超过2000瓦/(米·开尔文)。我们开发了一个半解析热传递模型,该模型与用于设计优化的严格计算结果吻合良好。我们的工作为增强任何材料之间的近场辐射热传递开辟了新的机会。

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