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溶液处理等离子体结构中红外发射率的自适应控制

Self-adaptive control of infrared emissivity in a solution-processed plasmonic structure.

作者信息

Ono Masashi, Takata Masahiro, Shirata Masashi, Yoshihiro Tatsuya, Tani Takeharu, Naya Masayuki, Saiki Toshiharu

出版信息

Opt Express. 2021 Oct 25;29(22):36048-36060. doi: 10.1364/OE.442462.

Abstract

Active control of optical properties, particularly in the infrared (IR) regime, is critical for the regulation of thermal emission. However, most photonic structures and devices are based on a sophisticated design, making the dynamic control of their IR properties challenging. Here, we demonstrate self-adaptive control of IR absorptivity/emissivity in a simple stacked structure that consists of an oxide plasmonic nanocrystal layer and a phase change material (VO) layer, both fabricated via a solution process. The resonance wavelength and emission intensity for this structure depend on the phase of the VO. This has potential applications for thermal emission structures (e.g., self-adaptive radiative cooling and IR camouflage). The proposed structure is a candidate low-cost and scalable active photonic platform.

摘要

光学特性的主动控制,尤其是在红外(IR)波段,对于热发射的调节至关重要。然而,大多数光子结构和器件基于复杂的设计,这使得对其红外特性进行动态控制具有挑战性。在此,我们展示了在一种简单的堆叠结构中对红外吸收率/发射率的自适应控制,该结构由一个氧化物等离子体纳米晶体层和一个相变材料(VO)层组成,两者均通过溶液法制备。这种结构的共振波长和发射强度取决于VO的相态。这在热发射结构(例如,自适应辐射冷却和红外伪装)方面具有潜在应用。所提出的结构是一种低成本且可扩展的有源光子平台的候选方案。

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