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Subwavelength focusing in the infrared range using a planar metallic lens of binary slits with refractive index modulation

机译:使用具有折射率调制的二元狭缝的平面金属透镜在红外范围内聚焦亚波长

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In this paper, we demonstrate a plasmonic planar lens structure that can achieve subwavelength focusing of the infrared electromagnetic radiation. The lens is composed of metallic binary slits with different dielectric fillings. The index modulation approach of the filling materials is used to achieve phase modulation of the wavefront of the incident wave. Using this approach, we could achieve a phase range of 0.43π. The structure can focus the incident infrared wave in the subwavelength scale. The focal length attained is 44.69 μm and the achieved Full width at half maximum (FWHM) is 4.28 um for an incident infrared wave of wavelength 8 um. The transmission through the structure is 25.64 % at the design wavelength. The used metal is copper and the dielectric filling materials are silicon and air. Copper has lower losses in the infrared range than the traditional metals used in visible Plasmonics. Silicon has a higher melting point than the common dielectric materials used in refractive index modulation of the visible Plasmonic lenses. This temperature stability is a very important feature when working in the infrared domain. Besides being specifically suitable for the infrared range, copper and silicon are also CMOS compatible. Therefore, the proposed structure is suitable for integration in many potential infrared applications such as thermal imaging, medical diagnosis, thermal photovoltaic cells and heat harvesting. In addition, the fact that many molecules have unique absorption spectra or signature in the infrared range would facilitate the analysis and study of many materials and biological molecules using infrared miniaturized spectrometers.
机译:在本文中,我们演示了可以实现亚波长聚焦的红外电磁辐射的等离子平面透镜结构。透镜由具有不同介电填充物的金属二元狭缝组成。填充材料的折射率调制方法用于实现入射波波前的相位调制。使用这种方法,我们可以实现0.43π的相位范围。该结构可以将入射的红外波聚焦在亚波长范围内。对于波长为8 um的入射红外波,获得的焦距为44.69μm,并且达到的半高全宽(FWHM)为4.28 um。在设计波长下,通过结构的透射率为25.64%。使用的金属是铜,电介质填充材料是硅和空气。铜在红外范围内的损耗低于可见等离子中使用的传统金属。硅的熔点比可见等离子透镜的折射率调制中使用的普通介电材料高。在红外领域工作时,这种温度稳定性是非常重要的功能。除了特别适用于红外范围外,铜和硅还兼容CMOS。因此,提出的结构适合于集成在许多潜在的红外应用中,例如热成像,医学诊断,热光伏电池和热量收集。另外,许多分子在红外范围内具有独特的吸收光谱或特征这一事实将有助于使用红外小型光谱仪对许多材料和生物分子进行分析和研究。

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