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Nanoimprinted Hybrid Metal-Semiconductor Plasmonic Multilayers with Controlled Surface Nano Architecture for Applications in NIR Detectors

机译:具有可控表面纳米结构的纳米压印杂化金属半导体等离子多层膜,可用于近红外探测器

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We present a proof of concept for tunable plasmon resonance frequencies in a core shell nano-architectured hybrid metal-semiconductor multilayer structure, with Ag as the active shell and ITO as the dielectric modulation media. Our method relies on the collective change in the dielectric function within the metal semiconductor interface to control the surface. Here we report fabrication and optical spectroscopy studies of large-area, nanostructured, hybrid silver and indium tin oxide (ITO) structures, with feature sizes below 100 nm and a controlled surface architecture. The optical and electrical properties of these core shell electrodes, including the surface plasmon frequency, can be tuned by suitably changing the order and thickness of the dielectric layers. By varying the dimensions of the nanopillars, the surface plasmon wavelength of the nanopillar Ag can be tuned from 650 to 690 nm. Adding layers of ITO to the structure further shifts the resonance wavelength toward the IR region and, depending on the sequence and thickness of the layers within the structure, we show that such structures can be applied in sensing devices including enhancing silicon as a photodetection material.
机译:我们提出了一个概念证明,证明了以核壳为纳米结构的混合金属-半导体多层结构中的可调谐等离子体激元共振频率,其中Ag为活性壳,ITO为介电调制介质。我们的方法依靠金属半导体界面内介电功能的集体变化来控制表面。在这里,我们报告了大面积,纳米结构的混合银和铟锡氧化物(ITO)结构的制造和光谱学研究,这些结构的特征尺寸低于100 nm,并且表面结构受控。这些核壳电极的光学和电学特性,包括表面等离激元频率,可以通过适当改变介电层的顺序和厚度来调整。通过改变纳米柱的尺寸,可以将纳米柱Ag的表面等离激元波长调节为650至690nm。向结构中添加ITO层进一步将谐振波长移向IR区域,并且根据结构中各层的顺序和厚度,我们显示出这种结构可应用于包括增强硅作为光检测材料的传感设备中。

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