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基于二氧化钒相变的频率可调近红外超材料

Frequency tunable near-infrared metamaterials based on VO2 phase transition.

作者信息

Dicken Matthew J, Aydin Koray, Pryce Imogen M, Sweatlock Luke A, Boyd Elizabeth M, Walavalkar Sameer, Ma James, Atwater Harry A

机构信息

California Institute of Technology, 1200 E. California Boulevard, Pasadena, California, USA.

出版信息

Opt Express. 2009 Sep 28;17(20):18330-9. doi: 10.1364/OE.17.018330.

Abstract

Engineering metamaterials with tunable resonances from mid-infrared to near-infrared wavelengths could have far-reaching consequences for chip based optical devices, active filters, modulators, and sensors. Utilizing the metal-insulator phase transition in vanadium oxide (VO(2)), we demonstrate frequency-tunable metamaterials in the near-IR range, from 1.5 - 5 microns. Arrays of Ag split ring resonators (SRRs) are patterned with e-beam lithography onto planar VO(2) and etched via reactive ion etching to yield Ag/VO(2) hybrid SRRs. FTIR reflection data and FDTD simulation results show the resonant peak position red shifts upon heating above the phase transition temperature. We also show that, by including coupling elements in the design of these hybrid Ag/VO(2) bi-layer structures, we can achieve resonant peak position tuning of up to 110 nm.

摘要

设计出在中红外到近红外波长范围内具有可调谐共振的超材料,可能会对基于芯片的光学器件、有源滤波器、调制器和传感器产生深远影响。利用氧化钒(VO(2))中的金属-绝缘体相变,我们展示了在1.5 - 5微米的近红外范围内的频率可调谐超材料。通过电子束光刻将银裂环谐振器(SRR)阵列图案化到平面VO(2)上,并通过反应离子蚀刻进行蚀刻,以产生Ag/VO(2)混合SRR。傅里叶变换红外反射数据和时域有限差分模拟结果表明,在加热到高于相变温度时,共振峰位置会发生红移。我们还表明,通过在这些混合Ag/VO(2)双层结构的设计中加入耦合元件,可以实现高达110纳米的共振峰位置调谐。

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