Title :
Transformation Electromagnetics Devices Based on Printed-Circuit Tensor Impedance Surfaces
Author :
Patel, A.M. ; Grbic, A.
Author_Institution :
Radiat. Lab., Univ. of Michigan, Ann Arbor, MI, USA
Abstract :
A method for designing transformation electromagnetics devices using tensor impedance surfaces is presented. The method is first applied to idealized tensor impedance boundary conditions (TIBCs), and later to printed-circuit tensor impedance surfaces (PCTISs). A PCTIS is a practical realization of a TIBC. It consists of a tensor impedance sheet, which models a subwavelength patterned metallic cladding, over a grounded dielectric substrate. The method outlined in this paper allows anisotropic TIBCs and PCTISs to be designed that support tangential wave vector distributions and power flow directions specified by a coordinate transformation. As an example, beam-shifting devices are designed, using TIBCs and PCTISs, that allow a surface wave to be shifted laterally. The designs are verified with a commercial full-wave electromagnetic solver. This work opens new opportunities for the design and implementation of anisotropic and inhomogeneous printed-circuit or graphene-based surfaces that can guide or radiate electromagnetic fields.
Keywords :
electromagnetic devices; printed circuits; tensors; PCTISs; TIBCs; anisotropic printed-circuit; beam-shifting devices; commercial full-wave electromagnetic solver; coordinate transformation; electromagnetic field radiation; graphene-based surfaces; grounded dielectric substrate; inhomogeneous printed-circuit; power flow directions; printed-circuit tensor impedance surfaces; subwavelength patterned metallic cladding model; tangential wave vector distributions; tensor impedance boundary conditions; tensor impedance sheet; transformation electromagnetics device design; Equations; Impedance; Optical surface waves; Surface impedance; Surface waves; Tensile stress; Vectors; Anisotropic structures; artificial impedance surfaces; impedance sheets; metasurfaces; periodic structures; surface impedance; surface waves; tensor surfaces; transformation electromagnetics (EM);
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2014.2314440