Bandwidth control of wavelength-selective uncooled infrared sensors using two-dimensional plasmonic absorbers

S. Ogawa, D. Fujisawa, M. Kimata
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引用次数: 5

Abstract

Although standard uncooled infrared (IR) sensors can be used to record information such as the shape, position, and average radiant intensity of objects, these devices cannot capture color (that is, wavelength) data. Achieving wavelength selectivity would pave the way for the development of advanced uncooled IR sensors capable of providing color information as well as multi-color image sensors that would have significant advantages in applications such as fire detection, gas analysis, hazardous material recognition, and biological analysis. We have previously demonstrated an uncooled IR sensor incorporating a two-dimensional plasmonic absorber (2D PLA) that exhibits wavelength selectivity over a wide range in the mid- and long-IR regions. This PLA has a 2D Au-based periodic array of dimples, in which surface plasmon modes are induced and wavelength-selective absorption occurs. However, the dependence of the absorption bandwidth on certain structural parameters has yet to be clarified. The bandwidth of such devices is a vital factor when considering the practical application of these sensors to tasks such as gas detection. In the present study, control of the bandwidth was theoretically investigated using a rigorous coupled wave analysis approach. It is demonstrated that the dimple sidewall structure has a significant impact on the bandwidth and can be used to control both narrow- and broadband absorption. Increasing the sidewall slope was found to decrease the bandwidth due to suppression of cavity-mode resonance in the depth direction of the dimples. These results will contribute to the development of high-resolution, wavelength-selective uncooled IR sensors.
利用二维等离子体吸收器的波长选择性非冷却红外传感器的带宽控制
虽然标准的非制冷红外(IR)传感器可用于记录物体的形状、位置和平均辐射强度等信息,但这些设备无法捕获颜色(即波长)数据。实现波长选择性将为能够提供颜色信息的先进非冷却红外传感器以及多色图像传感器的发展铺平道路,这些传感器将在诸如火灾探测、气体分析、有害物质识别和生物分析等应用中具有显著优势。我们之前已经展示了一种包含二维等离子体吸收剂(2D PLA)的非冷却红外传感器,该传感器在中长红外区域具有宽范围的波长选择性。该PLA具有二维au基的周期凹窝阵列,其中表面等离子体模式被诱导并发生波长选择性吸收。然而,吸收带宽对某些结构参数的依赖关系尚不清楚。当考虑这些传感器在气体检测等任务中的实际应用时,这些设备的带宽是一个至关重要的因素。在本研究中,使用严格的耦合波分析方法从理论上研究了带宽的控制。结果表明,凹窝结构对带宽有显著影响,可用于控制窄带和宽带吸收。增加侧壁斜率会抑制凹窝深度方向的腔模共振,从而降低带宽。这些结果将有助于高分辨率、波长选择性非冷却红外传感器的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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