Subwavelength metallic waveguides as a tool for extreme confinement of THz surface waves

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Abstract

Research on surface waves supported by metals at THz frequencies is experiencing a tremendous growth due to their potential for imaging, biological sensing and high-speed electronic circuits. Harnessing their properties is, however, challenging because these waves are typically poorly confined and weakly bound to the metal surface. Many design strategies have been introduced to overcome these limitations and achieve increased modal confinement, including patterned surfaces, coated waveguides and a variety of sub-wavelength geometries. Here we provide evidence, using a combination of numerical simulations and time-resolved experiments, that shrinking the transverse size of a generic metallic structure always leads to solutions with extreme field confinement. The existence of such a general behavior offers a new perspective on energy confinement and should benefit future developments in THz science and technology.

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Gacemi, D., Mangeney, J., Colombelli, R., & Degiron, A. (2013). Subwavelength metallic waveguides as a tool for extreme confinement of THz surface waves. Scientific Reports, 3. https://doi.org/10.1038/srep01369

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