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An analysis for the broad-band absorption enhancement using plasmonic structures on uncooled infrared detector pixels

机译:采用下冷却红外探测器像素对等离子体结构的宽带吸收增强分析

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This paper introduces an analysis on the absorption enhancement in uncooled infrared pixels using resonant plasmon modes in metal structures, and it reports, for the first time in literature, broad-band absorption enhancement using integrated plasmonic structures in microbolometers for unpolarized long-wave IR detection. Different plasmonic structures are designed and simulated on a stack of layers, namely gold, polyimide, and silicon nitride in order to enhance absorption at the long-wave infrared. The simulated structures are fabricated, and the reflectance measurements are conducted using an FTIR Ellipsometer in the 8-12 μm wavelength range. Finite difference time domain (FDTD) simulations are compared to experimental measurement results. Computational and experimental results show similar spectral reflection trends, verifying broad-band absorption enhancement in the spectral range of interest. Moreover, this paper computationally investigates pixel-wise absorption enhancement by plasmonic structures integrated with microbolometer pixels using the FDTD method. Special attention is given during the design to be able to implement the integrated plasmonic structures with the microbolometers without a need to modify the pre-determined microbolometer process flow. The optimized structure with plasmonic layer absorbs 84 % of the unpolarized radiation in the 8-12 μm spectral range on the average, which is a 22 % increase compared to a reference structure with no plasmonic design. Further improvement may be possible by designing multiply coupled resonant structures.
机译:本文介绍了使用金属结构中的谐振等离子体模式的加工载体模式的吸收增强分析,并在文献中首次在微过血管仪中使用集成等离子体结构进行了宽带吸收增强,用于非谐波的长波IR检测。在一叠层,即金,聚酰亚胺和氮化物上设计和模拟不同的等离子体结构,以增强在长波红外的吸收。模拟结构是制造的,并且在8-12μm波长范围内使用FTIR椭圆仪进行反射率测量。有限差分时域(FDTD)模拟与实验测量结果进行比较。计算和实验结果表明了类似的光谱反射趋势,验证了频谱范围内的宽带吸收增强。此外,本文通过使用FDTD方法计算通过与微致电压器像素集成的等离子体结构来调查像素明智的吸收增强。在设计期间给出了特别的注意,能够用微压计实现集成的等离子体结构,无需改变预定的微泡仪工艺流程。具有等离子体层的优化结构在8-12μm光谱范围内吸收84%的平均频谱范围,与具有等离子体设计的参考结构相比,增加22%。通过设计乘法耦合的谐振结构,可以进一步改进。

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