surface waveguide
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2020 ◽  
Vol 45 (22) ◽  
pp. 6186
Author(s):  
Qi Chen ◽  
D. N. Wang ◽  
Gao Feng ◽  
Q. H. Wang ◽  
Y. D. Niu

Nanophotonics ◽  
2020 ◽  
Vol 9 (16) ◽  
pp. 4785-4797
Author(s):  
Dmitry A. Chermoshentsev ◽  
Evgeny V. Anikin ◽  
Sergey A. Dyakov ◽  
Nikolay A. Gippius

AbstractWe theoretically study Dyakonov surface waveguide modes that propagate along the planar strip interfacial waveguide between two uniaxial dielectrics. We demonstrate that owing to the one-dimensional electromagnetic confinement, Dyakonov surface waveguide modes can propagate in the directions that are forbidden for the classical Dyakonov surface waves at the infinite interface. We show that this situation is similar to a waveguide effect and formulate the resonance conditions at which Dyakonov surface waveguide modes exist. We demonstrate that the propagation of such modes without losses is possible. We also consider a case of two-dimensional confinement, where the interface between two anisotropic dielectrics is bounded in both orthogonal directions. We show that such a structure supports Dyakonov surface cavity modes. Analytical results are confirmed by comparing with full-wave solutions of Maxwell’s equations. We believe that our work paves the way toward new insights in the field of surface waves in anisotropic media.


2020 ◽  
Vol 45 (14) ◽  
pp. 4060
Author(s):  
Esrom Kifle ◽  
Pavel Loiko ◽  
Javier Rodríguez Vázquez de Aldana ◽  
Carolina Romero ◽  
Víctor Llamas ◽  
...  

Author(s):  
Tobias Schaich ◽  
Anas Al Rawi ◽  
Trevor Morsman ◽  
Mike Payne

We investigate a model which shows how the introduction of a perturbing dielectric close to an electromagnetic surface wave leads to radiation away from the surface through the dielectric. This resembles a surface waveguide passing through a wall or being deployed underground. Our theory, which is based on the mode-matching technique, allows quantitative determination of losses from a bound surface wave mode up to the point of its complete extinction. For a surface wave supported by a coated, conducting sheet the attenuation due to the perturbing dielectric is calculated for a number of frequencies, permittivities of the perturbation and separations between the sheet and the perturbing dielectric. The accuracy of our results is verified by simulation of the system with a full-wave numerical solution. Finally, we report experimental data of perturbed surface waves on a cable, which are in qualitative agreement with our model.


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