用于辐射冷却和被动温度调节的自适应等离子体元表面

Azadeh Didari-Bader, N. M. Estakhri, N. Mohammadi Estakhri
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引用次数: 1

摘要

在这项工作中,我们研究了一类作为被动温度调节器工作的平面光子结构。通过结合相变材料(二氧化钒,VO2)和透明导电氧化物层(铝掺杂氧化锌,AZO)来调节辐射冷却过程。已知VO2在接近68°C的临界温度下经历从“介电”相到“等离子体”或“金属”相的相变。此外,AZO在长波红外光谱上显示出等离子体性质,与VO2相结合,提供了一个丰富的平台,可以实现辐射冷却应用中所需的低反射,同时保持紧凑的尺寸。使用数值分析,我们研究了两类图案化和非图案化的紧凑多层金属-电介质-金属超表面,旨在最大限度地提高第一个大气透明窗口(8-13µm)的整体吸收,同时在整个太阳光谱中保持高反射(0.3-2.5µm)。表面最初是基于一轮粗略优化设计的,并通过分析元表面元素的大小和周期性等几何参数的影响进行进一步改进。我们的发现与热调节系统和电子元件等高温设备的被动辐射冷却的应用有关。
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Adaptive plasmonic metasurfaces for radiative cooling and passive thermoregulation
In this work, we investigate a class of planar photonic structures operating as passive thermoregulators. The radiative cooling process is adjusted through the incorporation of a phase change material (Vanadium Dioxide, VO2) in conjunction with a layer of transparent conductive oxide (Aluminum-doped Zinc Oxide, AZO). VO2 is known to undergo a phase transition from the “dielectric” phase to the “plasmonic” or “metallic” phase at a critical temperature close to 68°C. In addition, AZO shows plasmonic properties at the long-wave infrared spectrum, which, combined with VO2, provides a rich platform to achieve low reflections across the atmospheric transparency window, as demanded in radiative cooling applications, while also maintaining a compact size. Using numerical analysis, we study two classes of patterned and non-patterned compact multilayer metal-dielectric-metal metasurfaces, aiming to maximize the overall absorption in the first atmospheric transparency window (8–13 µm) while maintaining a high reflection across the solar spectrum (0.3–2.5 µm). Surfaces are initially designed based on a round of coarse optimization and further improved through analyzing the impact of geometric parameters such as size and periodicity of the metasurface elements. Our findings are relevant to applications in thermal regulation systems and passive radiative cooling of high-temperature devices, such as electronic elements.
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