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Thermal tuning of infrared resonant absorbers based on hybrid gold-VO2 nanostructures

机译:基于杂化金-VO 2 纳米结构的红外共振吸收剂的热调谐

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摘要

Resonant absorbers based on plasmonic materials, metamaterials, and thin films enable spectrally selective absorption filters, where absorption is maximized at the resonance wavelength. By controlling the geometrical parameters of nano/microstructures and materials' refractive indices, resonant absorbers are designed to operate at wide range of wavelengths for applications including absorption filters, thermal emitters, thermophotovoltaic devices, and sensors. However, once resonant absorbers are fabricated, it is rather challenging to control and tune the spectral absorption response. Here, we propose and demonstrate thermally tunable infrared resonant absorbers using hybrid gold-vanadium dioxide (VO) nanostructure arrays. Absorption intensity is tuned from 90% to 20% and 96% to 32% using hybrid gold-VO nanowire and nanodisc arrays, respectively, by heating up the absorbers above the phase transition temperature of VO (68°C). Phase change materials such as VO deliver useful means of altering optical properties as a function of temperature. Absorbers with tunable spectral response can find applications in sensor and detector applications, in which external stimulus such as heat, electrical signal, or light results in a change in the absorption spectrum and intensity. © 2015 AIP Publishing LLC.
机译:基于等离激元材料,超材料和薄膜的共振吸收剂可实现光谱选择性吸收滤光片,在共振波长处吸收最大化。通过控制纳米/微结构的几何参数和材料的折射率,共振吸收器被设计为可在很宽的波长范围内工作,适用于包括吸收滤光片,热发射器,热光电装置和传感器的应用。然而,一旦制造了共振吸收器,控制和调谐光谱吸收响应就相当具有挑战性。在这里,我们提出并演示了使用混合金钒二氧化钒(VO)纳米结构阵列的热可调红外谐振吸收器。通过将吸收体加热到VO的相变温度(68°C)以上,分别使用混合金-VO纳米线和纳米圆片阵列将吸收强度从90%调整为20%,将96%调整为32%。相变材料(例如VO)提供了根据温度改变光学特性的有用方法。具有可调光谱响应的吸收器可以在传感器和检测器应用中找到应用,其中外部刺激(例如热,电信号或光)会导致吸收光谱和强度发生变化。 ©2015 AIP Publishing LLC。

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