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Research on compressed light-field and infrared reflection characteristics of patterned metallic micro-nano-structure arrays

机译:图案化金属微纳米结构阵列压缩光场和红外反射特性研究

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Metallic micro-nano-structure arrays can be used to induce a collective oscillation of free electrons on the surface ofmetal films, so as to generate relatively strong surface plasmons (SPs) at the metal and medium interface and furtherlocalized light field under the excitation of incident lightwaves. As the oscillating light field propagating along theinterface, the field strength can be increased reasonably at the functioned metal surface such as the incident light energybeing localized in the sub-wavelength region defined by the functioned micro-nano-structures. The common beamdiffraction limit formed during lightwave transmission or process can be broken effectively. Through constructing SPsover the special micro-nano-structures, the infrared reflection characteristics can be changed and then the local light fieldoriginated from incident infrared radiation also be enhanced significantly so as to efficiently perform infrared detection.Generally, the reflectivity and light field distribution behaviors of the functioned metal surface can be modulated bychanging featured parameters of the metallic micro-nano-structural arrays. In this paper, a metal micro-nano-patternedstructures with an arrayed tip is established for compressing the incident light field and then reducing the reflectivity ofthe metal surface and thus sensing incident light energy. A finite integral method for simulating and analyzing thestructural characters such as the distance between tips, the tip sharpness, the thickness of the metal film, is utilized toacquire the reflectivity and field enhancement characteristics. The infrared reflection spectrum and the near-fieldintensity distribution of the metallic micro-nano-structure are compared and analyzed. The results show that the responsefrequency and excitation intensity of SPs over the nano-tip array, the intensity and distribution region of the strong lightfield, can be controlled by matching the structural parameters and layout. The optimization of the metallic micro-nanostructurearrays is conducted so as to lay a solid foundation for further development of the similar technologies.
机译:金属微纳米结构阵列可用于在表面上诱导自由电子的集体振荡金属膜,以便在金属和中界面产生相对强大的表面等离子体(SPS),进一步在事件灯具激励下的局部光场。作为沿振荡的光场沿着界面,场强可以合理地在功能化的金属表面上增加,例如入射光能量定位在由功能化的微纳米结构限定的子波长区域中。共同的梁在光波变速器或过程期间形成的衍射限制可以有效地破坏。通过构建SPS.在特殊的微纳米结构上,可以改变红外反射特性,然后是局部光场起源于事件红外辐射也显着提高,以便有效地进行红外检测。通常,功能化金属表面的反射率和光场分布行为可以通过改变金属微纳米结构阵列的特征参数。在本文中,金属微纳米图案化建立具有阵列尖端的结构,用于压缩入射光场,然后降低反射率金属表面,从而感测入射光能量。模拟和分析的有限积分方法诸如尖端之间的距离,尖端清晰度,金属膜的厚度的结构特征,用于获得反射率和现场增强特征。红外反射光谱和近场比较和分析金属微纳米结构的强度分布。结果表明响应纳米尖端阵列的SPS的频率和激励强度,强光的强度和分布区域领域,可以通过匹配结构参数和布局来控制。金属微纳米结构的优化进行阵列,以便为进一步发展类似技术奠定坚实的基础。

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