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Optimization of 1D Silver Grating Devices for Extraordinary Optical Transmission

机译:用于非凡光传输的1D银光栅装置的优化

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This paper reports the behavior of extraordinary optical transmission (EOT) through 1D plasmonic nanostructure devices when thickness and periodicity of silver film simulated on glass substrate are fixed and only slit width is varied. Transverse magnetic (TM) polarized photon incident normally at the grating structure and zero-order transmission spectra has been extracted. Fano-resonance associate with the excitation of the surface plasmon polaritons (SPPs) has been evaluated carefully to calculate EOT. Excited plasmons along with the Febry-Perot mode have contributed toward the EOT through the periodic slits in the grating device. It has been found that its numerical value of EOT is maximum at a particular slit width, i.e., 409 nm, which is greater than one half and less than two third of periodicity, when wavelength of light is comparable with periodicity. This unique behavior is associated with the maximum incident energy coupled to the excited plasmon due to fundamental plasmonic mode being the most efficient. Such optimal devices find many applications in real world, e.g., light-emitting diodes (LEDs), biosensing, and SERs.
机译:本文报告了非凡的光学传输(EOT)到1D等离子体纳米结构装置的行为当在玻璃基板上模拟的银膜的厚度和周期性是固定的并且仅改变狭缝宽度时。已经提取了通常在光栅结构和零阶透射光谱处入射的横向磁性(TM)极化光子。仔细评估了与表面等离子体极性恒星(SPP)的激发的泛振共振助理以计算EOT。激发等离子体以及FEBRY-PEROT模式通过光栅装置中的周期性狭缝向EOT贡献。已经发现,当光的光与周期性相当时,其数值在特定的狭缝宽度,即409nm的eot的数值最大,即409nm,其大于周期性的周期性大于周期性。由于基本的等离子体模式是最有效的,这种独特的行为与耦合到励磁等离子体的最大入射能量相关联。这种最佳设备在现实世界中找到许多应用,例如,发光二极管(LED),生物传感和SERS。

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