Revealing the underlying mechanisms behind TE extraordinary THz transmission

被引:0
作者
SUZANNA FREER [1 ]
MIGUEL CAMACHO [2 ]
SERGEI AKUZNETSOV [3 ,4 ]
RAFAEL RBOIX [5 ]
MIGUEL BERUETE [6 ,7 ]
MIGUEL NAVARROCA [1 ]
机构
[1] School of Physics and Astronomy, University of Birmingham
[2] Department of Physics and Astronomy, University of Exeter
[3] Rzhanov Institute of Semiconductor Physics SB RAS Novosibirsk Branch TDIAM
[4] Physics Department, Novosibirsk State University
[5] Department of Electronics and Electromagnetism, Faculty of Physics, University of Seville
[6] Antennas Group-TERALAB, Universidad Pública de Navarra
[7] Institute of Smart Cities, Universidad Pública de Navarra
关键词
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暂无
中图分类号
O441.4 [电磁波与电磁场];
学科分类号
0809 ;
摘要
Transmission through seemingly opaque surfaces, so-called extraordinary transmission, provides an exciting platform for strong light–matter interaction, spectroscopy, optical trapping, and color filtering. Much of the effort has been devoted to understanding and exploiting TM extraordinary transmission, while TE anomalous extraordinary transmission has been largely omitted in the literature. This is regrettable from a practical point of view since the stronger dependence of the TE anomalous extraordinary transmission on the array’s substrate provides additional design parameters for exploitation. To provide high-performance and cost-effective applications based on TE anomalous extraordinary transmission, a complete physical insight about the underlying mechanisms of the phenomenon must be first laid down. To this end, resorting to a combined methodology including quasi-optical terahertz (THz) time-domain measurements, full-wave simulations, and method of moments analysis, subwavelength slit arrays under s-polarized illumination are studied here, filling the void in the current literature.We believe this work unequivocally reveals the leaky-wave role of the grounded-dielectric slab mode mediating in TE anomalous extraordinary transmission and provides the necessary framework to design practical high-performance THz components and systems.
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页码:430 / 439
页数:10
相关论文
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