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Energy Transmission by Photon Tunneling in Multilayer Structures Including Negative Index Materials

机译:包含负折射率材料的多层结构中通过光子隧穿进行的能量传输

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摘要

The phenomenon of photon tunneling, which depends on evanescent waves for radiative transfer, has important applications in microscale energy conversion devices and near-field optical microscopy. In recent years, there has been a surge of interest in the so-called negative index materials (NIMs), which have simultaneously negative electric permittivity and negative magnetic permeability. The present work investigates photon tunneling in multilayer structures consisting of positive index materials (PIMs) and NIMs. Some features, such as the enhancement of radiative transfer by the excitation of surface polaritons for both polarizations, are observed in the predicted transmittance spectra. The influence of the number of layers on the transmittance is also examined. The results suggest that the enhanced tunneling transmittance by polaritons also depends on the NIM layer thickness and that subdividing the PIM/NIM layers to enhance polariton coupling can reduce the effect of material loss on the tunneling transmittance.
机译:光子隧穿现象依赖于e逝波进行辐射转移,在微型能量转换装置和近场光学显微镜中具有重要的应用。近年来,人们对所谓的负折射率材料(NIM)产生了极大的兴趣,它们同时具有负介电常数和负磁导率。本工作研究了由正折射率材料(PIM)和NIM组成的多层结构中的光子隧穿。在预测的透射光谱中可以观察到一些特征,例如通过激发两个极化的表面极化子来增强辐射传递。还检查了层数对透射率的影响。结果表明,通过极化子提高隧穿透射率还取决于NIM层厚度,并且细分PIM / NIM层以增强极化子耦合可以减少材料损失对隧穿透射率的影响。

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